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        <title>QuantumComputingInfo</title>
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        <description>Your premier destination for quantum computing news, tutorials, research breakdowns, and career guidance. Explore the quantum frontier with in-depth articles and expert insights.</description>
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            <title><![CDATA[A temperature dial for more realistic quantum simulations]]></title>
            <link>https://quantumcomputinginfo.com/blog/a-temperature-dial-for-more-realistic-quantum-simulations-4fb9ab</link>
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            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Scientists from Rice University in the U.S. have developed a way to precisely tune the temperature inside a trapped-ion simulator. The breakthrough means they w...]]></description>
            <content:encoded><![CDATA[
# A temperature dial for more realistic quantum simulations

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-08-temperature-dial-realistic-quantum-simulations.html) on August 4, 2026.

Scientists from Rice University in the U.S. have developed a way to precisely tune the temperature inside a trapped-ion simulator. The breakthrough means they will be able to run quantum simulations at precise temperatures that better reflect real-world conditions.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-08-temperature-dial-realistic-quantum-simulations.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[D-Wave and Nasdaq Verafin Partner to Develop Quantum Applications for Financial Crime Detection]]></title>
            <link>https://quantumcomputinginfo.com/blog/d-wave-and-nasdaq-verafin-partner-to-develop-quantum-applications-for-financial-crime-detection-98612c</link>
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            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum computing developer D-Wave Quantum Inc. (NASDAQ: QBTS) has signed an agreement with Nasdaq Verafin—the financial crime management technology unit of Nas...]]></description>
            <content:encoded><![CDATA[
# D-Wave and Nasdaq Verafin Partner to Develop Quantum Applications for Financial Crime Detection

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/d-wave-and-nasdaq-verafin-partner-to-develop-quantum-applications-for-financial-crime-detection/) on August 4, 2026.

Quantum computing developer D-Wave Quantum Inc. (NASDAQ: QBTS) has signed an agreement with Nasdaq Verafin—the financial crime management technology unit of Nasdaq—to evaluate the use of quantum-hybrid computing in combating financial crime. The collaboration focuses on leveraging D-Wave’s quantum annealing systems and hybrid machine learning workflows to enhance predictive modeling for anti-money laundering (AML), fraud [...] The post D-Wave and Nasdaq Verafin Partner to Develop Quantum Applications for Financial Crime Detection appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/d-wave-and-nasdaq-verafin-partner-to-develop-quantum-applications-for-financial-crime-detection/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[enQase and Light Rider Collaborate on Quantum-Safe Communication Infrastructure]]></title>
            <link>https://quantumcomputinginfo.com/blog/enqase-and-light-rider-collaborate-on-quantum-safe-communication-infrastructure-370ba1</link>
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            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – enQase, a U.S.-based full-stack quantum-safe security platform, and Light Rider Inc., a quantum technology company developing secu...]]></description>
            <content:encoded><![CDATA[
# enQase and Light Rider Collaborate on Quantum-Safe Communication Infrastructure

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/08/04/enqase-light-rider-quantum-safe-communication-infrastructure/) on August 4, 2026.

Insider Brief Press release – enQase, a U.S.-based full-stack quantum-safe security platform, and Light Rider Inc., a quantum technology company developing secure communications, quantum entropy, and sovereign quantum infrastructure, today announced a strategic technology partnership. The companies will collaborate to evaluate, integrate, and demonstrate complementary technologies that can help organizations protect long-lived data, modernize cryptographic […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/08/04/enqase-light-rider-quantum-safe-communication-infrastructure/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Fujitsu, Monash and CSIRO Strengthen Australia–Japan Quantum Partnership]]></title>
            <link>https://quantumcomputinginfo.com/blog/fujitsu-monash-and-csiro-strengthen-australiajapan-quantum-partnership-c8f697</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/fujitsu-monash-and-csiro-strengthen-australiajapan-quantum-partnership-c8f697</guid>
            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Australian researchers and students will gain access to advanced quantum computing technology under a Memorandum of Understanding...]]></description>
            <content:encoded><![CDATA[
# Fujitsu, Monash and CSIRO Strengthen Australia–Japan Quantum Partnership

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/08/04/fujitsu-monash-csiro-australia-japan-quantum-partnership/) on August 4, 2026.

Insider Brief Press release – Australian researchers and students will gain access to advanced quantum computing technology under a Memorandum of Understanding between global digital transformation leader, Fujitsu, Monash University, and Australia’s national science agency, CSIRO. The collaboration aims to accelerate the development of practical quantum applications, strengthen Australia’s quantum capability and help build a […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/08/04/fujitsu-monash-csiro-australia-japan-quantum-partnership/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Horizon Quantum Reports Second Quarter 2026 Financial Results]]></title>
            <link>https://quantumcomputinginfo.com/blog/horizon-quantum-reports-second-quarter-2026-financial-results-362eae</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/horizon-quantum-reports-second-quarter-2026-financial-results-362eae</guid>
            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Horizon Quantum Holdings Ltd. (Nasdaq: HQ) (“Horizon Quantum,” “Horizon,” or “the Company”), a pioneer of software infrastructure...]]></description>
            <content:encoded><![CDATA[
# Horizon Quantum Reports Second Quarter 2026 Financial Results

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/08/04/horizon-quantum-reports-q2-2026-financial-results/) on August 4, 2026.

Insider Brief Press release – Horizon Quantum Holdings Ltd. (Nasdaq: HQ) (“Horizon Quantum,” “Horizon,” or “the Company”), a pioneer of software infrastructure for quantum applications, today reported financial results for the fiscal second quarter ended June 30, 2026 (“Q2 2026”). Second Quarter 2026 Financial and Business Highlights: CEO Commentary “During the second quarter of 2026, […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/08/04/horizon-quantum-reports-q2-2026-financial-results/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[IonQ and EPB Partner to Establish Tennessee Quantum Communications Research Center]]></title>
            <link>https://quantumcomputinginfo.com/blog/ionq-and-epb-partner-to-establish-tennessee-quantum-communications-research-center-63454f</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ionq-and-epb-partner-to-establish-tennessee-quantum-communications-research-center-63454f</guid>
            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum hardware and networking company IonQ (NYSE: IONQ) and Chattanooga electric power and telecommunications provider EPB have announced plans to launch the...]]></description>
            <content:encoded><![CDATA[
# IonQ and EPB Partner to Establish Tennessee Quantum Communications Research Center

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/ionq-and-epb-partner-to-establish-tennessee-quantum-communications-research-center/) on August 4, 2026.

Quantum hardware and networking company IonQ (NYSE: IONQ) and Chattanooga electric power and telecommunications provider EPB have announced plans to launch the Tennessee Quantum Communications Research Center. Based in Chattanooga, Tennessee, the research and development innovation laboratory will be directly connected to an operational fiber optic communications network. The initiative aims to integrate commercial quantum [...] The post IonQ and EPB Partner to Establish Tennessee Quantum Communications Research Center appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/ionq-and-epb-partner-to-establish-tennessee-quantum-communications-research-center/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[IonQ and EPB Partner to Launch the Tennessee Quantum Communications Research Center]]></title>
            <link>https://quantumcomputinginfo.com/blog/ionq-and-epb-partner-to-launch-the-tennessee-quantum-communications-research-center-4e2af8</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ionq-and-epb-partner-to-launch-the-tennessee-quantum-communications-research-center-4e2af8</guid>
            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – IonQ, Inc. (NYSE: IONQ), the world’s leading quantum platform company, and EPB, Chattanooga’s energy and communications solutions...]]></description>
            <content:encoded><![CDATA[
# IonQ and EPB Partner to Launch the Tennessee Quantum Communications Research Center

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/08/04/ionq-epb-tennessee-quantum-communications-research-center/) on August 4, 2026.

Insider Brief Press release – IonQ, Inc. (NYSE: IONQ), the world’s leading quantum platform company, and EPB, Chattanooga’s energy and communications solutions company, today announced plans for the Tennessee Quantum Communications Research Center. This will be the first dedicated next generation quantum communication research and development (R&D) innovation lab directly connected to a real-world network. […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/08/04/ionq-epb-tennessee-quantum-communications-research-center/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[IQM Confirms 2026 Outlook After Public Listing, Citing More Than €102 Million in Orders]]></title>
            <link>https://quantumcomputinginfo.com/blog/iqm-confirms-2026-outlook-after-public-listing-citing-more-than-102-million-in-orders-d4a2f4</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/iqm-confirms-2026-outlook-after-public-listing-citing-more-than-102-million-in-orders-d4a2f4</guid>
            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief IQM Quantum Computers said its public listing has strengthened its financial position and allowed it to reaffirm its 2026 outlook, according to a...]]></description>
            <content:encoded><![CDATA[
# IQM Confirms 2026 Outlook After Public Listing, Citing More Than €102 Million in Orders

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/08/04/iqm-confirms-2026-outlook-after-public-listing-citing-more-than-e102-million-in-orders/) on August 4, 2026.

Insider Brief IQM Quantum Computers said its public listing has strengthened its financial position and allowed it to reaffirm its 2026 outlook, according to a statement from the company. The Finnish quantum computing pioneer’s second-quarter and first-half 2026 report tells a familiar story of growing commercial activity alongside continued heavy investment and significant operating losses […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/08/04/iqm-confirms-2026-outlook-after-public-listing-citing-more-than-e102-million-in-orders/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[IQM Quantum Computers Reports First Half 2026 Results and Provides Full-Year Outlook]]></title>
            <link>https://quantumcomputinginfo.com/blog/iqm-quantum-computers-reports-first-half-2026-results-and-provides-full-year-outlook-6d028d</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/iqm-quantum-computers-reports-first-half-2026-results-and-provides-full-year-outlook-6d028d</guid>
            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – IQM Quantum Computers Plc (Nasdaq: IQMX) (“IQM”, “IQM Quantum Computers” or the “Company”), a global leader in full-stack supercon...]]></description>
            <content:encoded><![CDATA[
# IQM Quantum Computers Reports First Half 2026 Results and Provides Full-Year Outlook

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/08/04/iqm-quantum-computers-h1-2026-results-full-year-outlook/) on August 4, 2026.

Insider Brief Press release – IQM Quantum Computers Plc (Nasdaq: IQMX) (“IQM”, “IQM Quantum Computers” or the “Company”), a global leader in full-stack superconducting quantum computers, today announced its financial results for the first half and second quarter of 2026, ended on June 30, 2026. First Half and Year to Date 2026 Financial Highlights First Half and Year […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/08/04/iqm-quantum-computers-h1-2026-results-full-year-outlook/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[JIJ Raises $5.2 Million, Expands Qamomile Software Platform, and Joins Quantinuum Partner Program]]></title>
            <link>https://quantumcomputinginfo.com/blog/jij-raises-52-million-expands-qamomile-software-platform-and-joins-quantinuum-partner-program-35b8ad</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/jij-raises-52-million-expands-qamomile-software-platform-and-joins-quantinuum-partner-program-35b8ad</guid>
            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Tokyo-based quantum software developer JIJ Inc. has announced the completion of an 840 million JPY (approximately $5.2 million USD) equity financing round led b...]]></description>
            <content:encoded><![CDATA[
# JIJ Raises $5.2 Million, Expands Qamomile Software Platform, and Joins Quantinuum Partner Program

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/jij-raises-5-2-million-expands-qamomile-software-platform-and-joins-quantinuum-partner-program/) on August 4, 2026.

Tokyo-based quantum software developer JIJ Inc. has announced the completion of an 840 million JPY (approximately $5.2 million USD) equity financing round led by Global Brain. The capital raise included participation from multiple funds managed by Global Brain—including the KDDI Open Innovation Fund III, ME Innovation Fund (Mitsubishi Electric), ANA Future Frontier Fund, and KURONEKO [...] The post JIJ Raises $5.2 Million, Expands Qamomile Software Platform, and Joins Quantinuum Partner Program appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/jij-raises-5-2-million-expands-qamomile-software-platform-and-joins-quantinuum-partner-program/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[JIJ Raises US$5.2 Million in Funding Led by Global Brain]]></title>
            <link>https://quantumcomputinginfo.com/blog/jij-raises-us52-million-in-funding-led-by-global-brain-255de7</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/jij-raises-us52-million-in-funding-led-by-global-brain-255de7</guid>
            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief PRESS RELEASE — JIJ Inc. (“JIJ”), developer of a quantum- and AI-enabled optimization platform, today announced that it has raised JPY 840 million...]]></description>
            <content:encoded><![CDATA[
# JIJ Raises US$5.2 Million in Funding Led by Global Brain

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/08/04/jij-raises-us5-2-million-in-funding-led-by-global-brain/) on August 4, 2026.

Insider Brief PRESS RELEASE — JIJ Inc. (“JIJ”), developer of a quantum- and AI-enabled optimization platform, today announced that it has raised JPY 840 million, approximately US$5.2 million, in equity financing, with Global Brain Corporation (“Global Brain”) serving as the lead investor. The financing was provided through multiple funds managed by Global Brain (GB-VII & […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/08/04/jij-raises-us5-2-million-in-funding-led-by-global-brain/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Molecular orbitals imaged in 3D, opening path to femtosecond videos]]></title>
            <link>https://quantumcomputinginfo.com/blog/molecular-orbitals-imaged-in-3d-opening-path-to-femtosecond-videos-62243d</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/molecular-orbitals-imaged-in-3d-opening-path-to-femtosecond-videos-62243d</guid>
            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[One of the most famous and intriguing results of quantum mechanics is the finding that fundamental particles, such as electrons, cannot be pinned down to one si...]]></description>
            <content:encoded><![CDATA[
# Molecular orbitals imaged in 3D, opening path to femtosecond videos

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-08-molecular-orbitals-imaged-3d-path.html) on August 4, 2026.

One of the most famous and intriguing results of quantum mechanics is the finding that fundamental particles, such as electrons, cannot be pinned down to one single location. Instead, a particle is described by its "wavefunction," which allows researchers to derive probability distributions—a sort of mathematical map that shows the possibilities—of fundamental properties such as its position and momentum. In particular, the electron wavefunctions within a molecule, known as "molecular orbitals," carry information about how the molecule interacts with its surroundings. For example, they show how it may absorb light or how a chemical reaction might take place....

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-08-molecular-orbitals-imaged-3d-path.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[OptQC and NTT Sign Capital Alliance to Build 1-Million-Qubit Optical Quantum Computer]]></title>
            <link>https://quantumcomputinginfo.com/blog/optqc-and-ntt-sign-capital-alliance-to-build-1-million-qubit-optical-quantum-computer-7b6993</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/optqc-and-ntt-sign-capital-alliance-to-build-1-million-qubit-optical-quantum-computer-7b6993</guid>
            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Tokyo-based optical quantum startup OptQC Corp. and telecommunications giant NTT, Inc. have signed a capital and business alliance agreement to accelerate the d...]]></description>
            <content:encoded><![CDATA[
# OptQC and NTT Sign Capital Alliance to Build 1-Million-Qubit Optical Quantum Computer

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/optqc-and-ntt-sign-capital-alliance-to-build-1-million-qubit-optical-quantum-computer/) on August 4, 2026.

Tokyo-based optical quantum startup OptQC Corp. and telecommunications giant NTT, Inc. have signed a capital and business alliance agreement to accelerate the development and commercialization of a fault-tolerant, 1-million-qubit-class optical quantum computer. Under the agreement, NTT will make a strategic equity investment in OptQC to establish a medium- to long-term collaborative framework spanning hardware architecture [...] The post OptQC and NTT Sign Capital Alliance to Build 1-Million-Qubit Optical Quantum Computer appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/optqc-and-ntt-sign-capital-alliance-to-build-1-million-qubit-optical-quantum-computer/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[PsiQuantum Commits $250,000 to South Chicago Quantum Workforce Development]]></title>
            <link>https://quantumcomputinginfo.com/blog/psiquantum-commits-250000-to-south-chicago-quantum-workforce-development-e6bc27</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/psiquantum-commits-250000-to-south-chicago-quantum-workforce-development-e6bc27</guid>
            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Students participating in hands-on STEM activities. Source: PsiQuantum Photonic quantum computing developer PsiQuantum has announced a $250,000 philanthropic in...]]></description>
            <content:encoded><![CDATA[
# PsiQuantum Commits $250,000 to South Chicago Quantum Workforce Development

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/psiquantum-commits-250000-to-south-chicago-quantum-workforce-development/) on August 4, 2026.

Students participating in hands-on STEM activities. Source: PsiQuantum Photonic quantum computing developer PsiQuantum has announced a $250,000 philanthropic investment to expand local STEM education, higher education programs, and career training in South Chicago. As the anchor tenant of the Illinois Quantum and Microelectronics Park (IQMP), the company is funding workforce development initiatives across surrounding communities [...] The post PsiQuantum Commits $250,000 to South Chicago Quantum Workforce Development appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/psiquantum-commits-250000-to-south-chicago-quantum-workforce-development/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum Corridor, Ciena and Toshiba Test 1.6 Tb/s Quantum-Safe Network Encryption]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-corridor-ciena-and-toshiba-test-16-tbs-quantum-safe-network-encryption-27e964</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-corridor-ciena-and-toshiba-test-16-tbs-quantum-safe-network-encryption-27e964</guid>
            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Quantum Corridor, Ciena (NYSE: CIEN) and Toshiba have completed a successful trial of high-speed quantum-safe networking on Quantu...]]></description>
            <content:encoded><![CDATA[
# Quantum Corridor, Ciena and Toshiba Test 1.6 Tb/s Quantum-Safe Network Encryption

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/08/04/quantum-corridor-ciena-toshiba-1-6-tbps-quantum-safe-optical-encryption-live-network/) on August 4, 2026.

Insider Brief Press release – Quantum Corridor, Ciena (NYSE: CIEN) and Toshiba have completed a successful trial of high-speed quantum-safe networking on Quantum Corridor’s live commercial network in the Midwest United States. The trial demonstrates how organizations can immediately protect critical in-flight data with Ciena’s WaveLogic 6 Extreme (WL6e) 1.6 Tb/s quantum-safe encryption capabilities, which support a hybrid security approach using […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/08/04/quantum-corridor-ciena-toshiba-1-6-tbps-quantum-safe-optical-encryption-live-network/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum fluid reveals hidden states that can be switched with a magnetic field]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-fluid-reveals-hidden-states-that-can-be-switched-with-a-magnetic-field-36545d</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-fluid-reveals-hidden-states-that-can-be-switched-with-a-magnetic-field-36545d</guid>
            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Bose-Einstein condensates (BECs) are often described as a "fifth state of matter": a quantum state in which many particles lose their individual identities and...]]></description>
            <content:encoded><![CDATA[
# Quantum fluid reveals hidden states that can be switched with a magnetic field

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-08-quantum-fluid-reveals-hidden-states.html) on August 4, 2026.

Bose-Einstein condensates (BECs) are often described as a "fifth state of matter": a quantum state in which many particles lose their individual identities and behave as one collective object. For more than 60 years, researchers have sought to create such condensates from excitons—electron-hole pairs—as a solid-state route to macroscopic quantum coherence, which is useful for quantum technologies. This has been difficult to realize in controllable semiconductor devices because optically generated excitons have very short lifetimes of around a billionth of a second, and BECs are normally attained with ultracold gases in a vacuum....

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-08-quantum-fluid-reveals-hidden-states.html)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[QuiX Quantum Launches Alquor 2.0 Photonic Quantum Processor Platform]]></title>
            <link>https://quantumcomputinginfo.com/blog/quix-quantum-launches-alquor-20-photonic-quantum-processor-platform-3cd8f9</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quix-quantum-launches-alquor-20-photonic-quantum-processor-platform-3cd8f9</guid>
            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – QuiX Quantum today announced the commercial availability of Alquor 2.0, the next generation of its rack-mountable quantum photonic...]]></description>
            <content:encoded><![CDATA[
# QuiX Quantum Launches Alquor 2.0 Photonic Quantum Processor Platform

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/08/04/quix-quantum-launches-alquor-2-0-photonic-quantum-research/) on August 4, 2026.

Insider Brief Press release – QuiX Quantum today announced the commercial availability of Alquor 2.0, the next generation of its rack-mountable quantum photonic processor platform, available in 8-mode, 20-mode and 32-mode configurations, for advanced quantum optics, quantum communication, boson sampling, quantum information processing, and photonic quantum computing research. Alquor 2.0 is designed to reduce lab complexity and accelerate experimental progress. Built on QuiX Quantum’s proven […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/08/04/quix-quantum-launches-alquor-2-0-photonic-quantum-research/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Thales Launches Luna 8 Hardware Security Module for Post-Quantum Cryptography Readiness]]></title>
            <link>https://quantumcomputinginfo.com/blog/thales-launches-luna-8-hardware-security-module-for-post-quantum-cryptography-readiness-80e7de</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/thales-launches-luna-8-hardware-security-module-for-post-quantum-cryptography-readiness-80e7de</guid>
            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – According to the 2026 Thales Data Threat Report, the threat of Harvest Now, Decrypt Later (HNDL) attacks was the top-cited risk, w...]]></description>
            <content:encoded><![CDATA[
# Thales Launches Luna 8 Hardware Security Module for Post-Quantum Cryptography Readiness

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/08/04/thales-cryptographic-security-ai-post-quantum-computing/) on August 4, 2026.

Insider Brief Press release – According to the 2026 Thales Data Threat Report, the threat of Harvest Now, Decrypt Later (HNDL) attacks was the top-cited risk, with 59% of organizations reporting that they are prototyping and evaluating post-quantum cryptography (PQC) algorithms to prepare for the quantum era. To help organizations turn this readiness into deployment,Thales, a […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/08/04/thales-cryptographic-security-ai-post-quantum-computing/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[The latest AI news we announced in July 2026]]></title>
            <link>https://quantumcomputinginfo.com/blog/the-latest-ai-news-we-announced-in-july-2026-58ba35</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/the-latest-ai-news-we-announced-in-july-2026-58ba35</guid>
            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Here are Google’s latest AI updates from July 2026...]]></description>
            <content:encoded><![CDATA[
# The latest AI news we announced in July 2026

> **Source:** Originally published on [Google AI Blog](https://blog.google/innovation-and-ai/technology/ai/google-ai-updates-july-2026/) on August 4, 2026.

Here are Google’s latest AI updates from July 2026

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To read the full article, visit the original source page:

[Read the full article on Google AI Blog →](https://blog.google/innovation-and-ai/technology/ai/google-ai-updates-july-2026/)
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            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[UC Berkeley and QuantrolOx Sign Agreement to Advance Quantum Computing Industrialisation]]></title>
            <link>https://quantumcomputinginfo.com/blog/uc-berkeley-and-quantrolox-sign-agreement-to-advance-quantum-computing-industrialisation-d88e6b</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/uc-berkeley-and-quantrolox-sign-agreement-to-advance-quantum-computing-industrialisation-d88e6b</guid>
            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – The University of California, Berkeley, on behalf of its Department of Physics and the Roger Herst Quantum Nexus, and QuantrolOx I...]]></description>
            <content:encoded><![CDATA[
# UC Berkeley and QuantrolOx Sign Agreement to Advance Quantum Computing Industrialisation

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/08/04/uc-berkeley-quantrolx-agreement-industrialisation-quantum-computing/) on August 4, 2026.

Insider Brief Press release – The University of California, Berkeley, on behalf of its Department of Physics and the Roger Herst Quantum Nexus, and QuantrolOx Inc. have entered into a Memorandum of Understanding (MOU) establishing a five-year framework for collaboration on the end-to-end industrialisation of quantum computing – advancing the technology from bespoke, laboratory-scale experimentation […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/08/04/uc-berkeley-quantrolx-agreement-industrialisation-quantum-computing/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[A Quantum Reservoir for Neurodynamical Forecasting]]></title>
            <link>https://quantumcomputinginfo.com/blog/a-quantum-reservoir-for-neurodynamical-forecasting-4673a0</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/a-quantum-reservoir-for-neurodynamical-forecasting-4673a0</guid>
            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2608.00139v1 Announce Type: new Abstract: Forecasting neural activity from short recordings remains a fundamental challenge. Reservoir computing may offer...]]></description>
            <content:encoded><![CDATA[
# A Quantum Reservoir for Neurodynamical Forecasting

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2608.00139) on August 4, 2026.

arXiv:2608.00139v1 Announce Type: new Abstract: Forecasting neural activity from short recordings remains a fundamental challenge. Reservoir computing may offer an efficient paradigm for temporal prediction, however classical reservoirs typically underperform in small-data regimes. Here we investigate whether quantum reservoir computing (QRC) can help overcome this limitation. Building on recent advances, we introduce a quantum reservoir based on a transverse-field Ising model, combined with heterogeneous quantum measurements and polynomial ridge regression. On a standard benchmark task, results show that the quantum reservoir outperforms a classical counterpart overall, with prediction accuracy strongly dependent on reservoir parameters. We further demonstrate feasibility by running the s...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2608.00139)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Canonical quantization of the Pais-Uhlenbeck oscillator with a higher-derivative perturbation: a covariant phase space approach]]></title>
            <link>https://quantumcomputinginfo.com/blog/canonical-quantization-of-the-pais-uhlenbeck-oscillator-with-a-higher-derivative-perturbation-a-covariant-phase-space-approach-911d85</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/canonical-quantization-of-the-pais-uhlenbeck-oscillator-with-a-higher-derivative-perturbation-a-covariant-phase-space-approach-911d85</guid>
            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2608.00108v1 Announce Type: new Abstract: In this paper, we apply the covariant phase space formalism to the perturbative canonical quantization of the Pa...]]></description>
            <content:encoded><![CDATA[
# Canonical quantization of the Pais-Uhlenbeck oscillator with a higher-derivative perturbation: a covariant phase space approach

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2608.00108) on August 4, 2026.

arXiv:2608.00108v1 Announce Type: new Abstract: In this paper, we apply the covariant phase space formalism to the perturbative canonical quantization of the Pais-Uhlenbeck oscillator, with the acceleration-squared term treated as a perturbation. We quantize this model by constructing the symplectic form on the low-energy solution space. We then compute the energy spectrum and the unequal-time commutator in a perturbative way, and obtain the results that agree with the expansion of the exact low-energy theory. The perturbation method bypasses the standard Ostrogradsky construction and naturally decouples the Ostrogradsky ghost. This work extends our previous perturbative quantization scheme to genuine higher-derivative theories....

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2608.00108)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Exact minimum measurement dependence for faithful local deterministic models of multipartite GHZ-Mermin correlations]]></title>
            <link>https://quantumcomputinginfo.com/blog/exact-minimum-measurement-dependence-for-faithful-local-deterministic-models-of-multipartite-ghz-mermin-correlations-d02fd9</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/exact-minimum-measurement-dependence-for-faithful-local-deterministic-models-of-multipartite-ghz-mermin-correlations-d02fd9</guid>
            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2608.00124v1 Announce Type: new Abstract: Bell derivations rest on locality, determinism, and measurement independence. Hall [Phys. Rev. Lett. 105, 250404...]]></description>
            <content:encoded><![CDATA[
# Exact minimum measurement dependence for faithful local deterministic models of multipartite GHZ-Mermin correlations

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2608.00124) on August 4, 2026.

arXiv:2608.00124v1 Announce Type: new Abstract: Bell derivations rest on locality, determinism, and measurement independence. Hall [Phys. Rev. Lett. 105, 250404 (2010)] priced the third assumption exactly for the singlet state, and in the Kochen-Specker analysis of Phys. Rev. A 84, 022102 (2011) priced the four tripartite Mermin perfect correlators at a surrendered fraction of 1/3, leaving open the problem of an optimal model for the Mermin state itself. This paper solves the faithful version of that problem -- every full correlator reproduced and every proper-subset marginal vanishing -- and extends it to thirteen parties. A reduction theorem shows the faithfulness constraints are free, so Hall's correlator-only threshold is promoted to the faithful value, F(3) = 1/3; linear-programming o...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2608.00124)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Quantum Simulation of SPAD in the Space Radiation Environment]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-simulation-of-spad-in-the-space-radiation-environment-ff7095</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-simulation-of-spad-in-the-space-radiation-environment-ff7095</guid>
            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2608.00040v1 Announce Type: new Abstract: Single-Photon Avalanche Diodes (SPADs) are critical components of emerging quantum communication networks that d...]]></description>
            <content:encoded><![CDATA[
# Quantum Simulation of SPAD in the Space Radiation Environment

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2608.00040) on August 4, 2026.

arXiv:2608.00040v1 Announce Type: new Abstract: Single-Photon Avalanche Diodes (SPADs) are critical components of emerging quantum communication networks that detect single photons. They are placed in satellites for long-distance communication and are susceptible to radiation-induced displacement damage in space. This degrades SPAD performance parameters, including reduced efficiency, increased thermal dark counts, damage to the Si crystal, and increased afterpulsing rate. This paper simulates SPAD in a space radiation environment by introducing a quantum simulation framework, modeling the SPAD detector as a three-level quantum system, ground state ($|g\rangle$), excited state ($|e\rangle$) and a trap state ($|t\rangle$). Furthermore, to model the photon as a quantum system, second quantiz...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2608.00040)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Symmetry-initialized quantum Gibbs sampling: a non-Abelian asymmetry cascade]]></title>
            <link>https://quantumcomputinginfo.com/blog/symmetry-initialized-quantum-gibbs-sampling-a-non-abelian-asymmetry-cascade-73626e</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/symmetry-initialized-quantum-gibbs-sampling-a-non-abelian-asymmetry-cascade-73626e</guid>
            <pubDate>Tue, 04 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2608.00055v1 Announce Type: new Abstract: For a quantum Gibbs sampler whose mixing bottleneck is a weakly broken symmetry, I show that the correct initial...]]></description>
            <content:encoded><![CDATA[
# Symmetry-initialized quantum Gibbs sampling: a non-Abelian asymmetry cascade

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2608.00055) on August 4, 2026.

arXiv:2608.00055v1 Announce Type: new Abstract: For a quantum Gibbs sampler whose mixing bottleneck is a weakly broken symmetry, I show that the correct initialization is determined by representation theory. I first prove a general speedup-versus-prefactor dichotomy: by exactly eliminating slow-mode overlap, I convert a nominal prefactor reduction into a fundamental, asymptotic acceleration of the system's mixing time. I then show that when the bottleneck is a weakly broken symmetry, the otherwise exponentially expensive bottleneck eigenvector is the symmetry charge.For a non-Abelian group $G$, I prove that the correct initialization target is the group-averaging asymmetry. Projecting this asymmetry out requires a $G$-invariant input. Partial, subgroup-invariant inputs produce a cascade of...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2608.00055)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Anchorage Digital Outlines Post-Quantum Migration Strategy for Institutional Assets]]></title>
            <link>https://quantumcomputinginfo.com/blog/anchorage-digital-outlines-post-quantum-migration-strategy-for-institutional-assets-b602a8</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/anchorage-digital-outlines-post-quantum-migration-strategy-for-institutional-assets-b602a8</guid>
            <pubDate>Mon, 03 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Federally chartered crypto bank Anchorage Digital has unveiled its post-quantum compute (PQC) preparedness strategy, establishing an operational blueprint to sa...]]></description>
            <content:encoded><![CDATA[
# Anchorage Digital Outlines Post-Quantum Migration Strategy for Institutional Assets

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/anchorage-digital-outlines-post-quantum-migration-strategy-for-institutional-assets/) on August 3, 2026.

Federally chartered crypto bank Anchorage Digital has unveiled its post-quantum compute (PQC) preparedness strategy, establishing an operational blueprint to safeguard digital asset holdings against emerging quantum decryption threats. Recognizing that quantum algorithms such as Shor's algorithm pose a direct threat to public-key digital signatures, the firm has deployed a multi-layered security infrastructure designed to neutralize [...] The post Anchorage Digital Outlines Post-Quantum Migration Strategy for Institutional Assets appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/anchorage-digital-outlines-post-quantum-migration-strategy-for-institutional-assets/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Caltech and Oratomic Introduce “Mitten” qLDPC Codes for High-Throughput Quantum Computing]]></title>
            <link>https://quantumcomputinginfo.com/blog/caltech-and-oratomic-introduce-mitten-qldpc-codes-for-high-throughput-quantum-computing-129bf3</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/caltech-and-oratomic-introduce-mitten-qldpc-codes-for-high-throughput-quantum-computing-129bf3</guid>
            <pubDate>Mon, 03 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Mitten codes as fault-tolerant qLDPC processors Researchers from the California Institute of Technology (Caltech) and Oratomic, Inc. have introduced mitten code...]]></description>
            <content:encoded><![CDATA[
# Caltech and Oratomic Introduce “Mitten” qLDPC Codes for High-Throughput Quantum Computing

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/caltech-and-oratomic-introduce-mitten-qldpc-codes-for-high-throughput-quantum-computing/) on August 3, 2026.

Mitten codes as fault-tolerant qLDPC processors Researchers from the California Institute of Technology (Caltech) and Oratomic, Inc. have introduced mitten codes, a new family of non-abelian quantum low-density parity-check (qLDPC) error-correcting codes. Published on arXiv under the title "High-rate qLDPC processors," the research addresses the long-standing challenge of creating fault-tolerant quantum processors that simultaneously achieve [...] The post Caltech and Oratomic Introduce “Mitten” qLDPC Codes for High-Throughput Quantum Computing appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/caltech-and-oratomic-introduce-mitten-qldpc-codes-for-high-throughput-quantum-computing/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[China Forms Quantum Standards Committee to Coordinate Industry Development]]></title>
            <link>https://quantumcomputinginfo.com/blog/china-forms-quantum-standards-committee-to-coordinate-industry-development-6a5357</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/china-forms-quantum-standards-committee-to-coordinate-industry-development-6a5357</guid>
            <pubDate>Mon, 03 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief China has established a national technical committee dedicated to quantum information standards, underscoring the country’s effort to build the re...]]></description>
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# China Forms Quantum Standards Committee to Coordinate Industry Development

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/08/03/china-quantum-standards-committee/) on August 3, 2026.

Insider Brief China has established a national technical committee dedicated to quantum information standards, underscoring the country’s effort to build the regulatory and technical framework needed to support its expanding quantum technology sector. The committee, established Thursday under China’s Ministry of Industry and Information Technology (MIIT), will develop and revise industry standards spanning quantum computing, […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/08/03/china-quantum-standards-committee/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Connecting students with the future of microelectronics]]></title>
            <link>https://quantumcomputinginfo.com/blog/connecting-students-with-the-future-of-microelectronics-094a70</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/connecting-students-with-the-future-of-microelectronics-094a70</guid>
            <pubDate>Mon, 03 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[The 2026 NEMC Hub-sponsored externship gave students access to world-class research, advanced semiconductor manufacturing, and professionals driving innovation...]]></description>
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# Connecting students with the future of microelectronics

> **Source:** Originally published on [MIT News Quantum](https://news.mit.edu/2026/connecting-students-future-microelectronics-0803) on August 3, 2026.

The 2026 NEMC Hub-sponsored externship gave students access to world-class research, advanced semiconductor manufacturing, and professionals driving innovation across the Northeast.

---

To read the full article, visit the original source page:

[Read the full article on MIT News Quantum →](https://news.mit.edu/2026/connecting-students-future-microelectronics-0803)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[D-Wave and Nasdaq Verafin Announce Agreement for Quantum Computing Application Development]]></title>
            <link>https://quantumcomputinginfo.com/blog/d-wave-and-nasdaq-verafin-announce-agreement-for-quantum-computing-application-development-b1b911</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/d-wave-and-nasdaq-verafin-announce-agreement-for-quantum-computing-application-development-b1b911</guid>
            <pubDate>Mon, 03 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – D-Wave Quantum Inc. (NASDAQ: QBTS), (“D-Wave” or the “Company”), the only dual-platform quantum computing company providing both a...]]></description>
            <content:encoded><![CDATA[
# D-Wave and Nasdaq Verafin Announce Agreement for Quantum Computing Application Development

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/08/03/d-wave-nasdaq-verafin-quantum-computing-application-development-agreement/) on August 3, 2026.

Insider Brief Press release – D-Wave Quantum Inc. (NASDAQ: QBTS), (“D-Wave” or the “Company”), the only dual-platform quantum computing company providing both annealing and gate-model systems, software and services, and Nasdaq Verafin announced today an agreement designed to evaluate the use of quantum computing to improve financial crime detection. The collaboration will begin with the […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/08/03/d-wave-nasdaq-verafin-quantum-computing-application-development-agreement/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Inside our 353,000-person vibe coding course]]></title>
            <link>https://quantumcomputinginfo.com/blog/inside-our-353000-person-vibe-coding-course-6193ed</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/inside-our-353000-person-vibe-coding-course-6193ed</guid>
            <pubDate>Mon, 03 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Kaggle’s AI Agents Intensive with Google brought learners together in a no-cost course to build and deploy the next frontier of AI....]]></description>
            <content:encoded><![CDATA[
# Inside our 353,000-person vibe coding course

> **Source:** Originally published on [Google AI Blog](https://blog.google/innovation-and-ai/technology/developers-tools/ai-agents-intensive-recap-2026/) on August 3, 2026.

Kaggle’s AI Agents Intensive with Google brought learners together in a no-cost course to build and deploy the next frontier of AI.

---

To read the full article, visit the original source page:

[Read the full article on Google AI Blog →](https://blog.google/innovation-and-ai/technology/developers-tools/ai-agents-intensive-recap-2026/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[New quantum encryption method prevents ciphertext from being cloned]]></title>
            <link>https://quantumcomputinginfo.com/blog/new-quantum-encryption-method-prevents-ciphertext-from-being-cloned-d75a7b</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/new-quantum-encryption-method-prevents-ciphertext-from-being-cloned-d75a7b</guid>
            <pubDate>Mon, 03 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Digital security currently relies on difficult equations to protect data. For example, when you use a credit card online, the information is locked inside a mat...]]></description>
            <content:encoded><![CDATA[
# New quantum encryption method prevents ciphertext from being cloned

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-08-quantum-encryption-method-ciphertext-cloned.html) on August 3, 2026.

Digital security currently relies on difficult equations to protect data. For example, when you use a credit card online, the information is locked inside a math problem that would take a modern computer thousands of years to solve. However, if someone builds a powerful enough computer, that security breaks.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-08-quantum-encryption-method-ciphertext-cloned.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[NSF Awards UC San Diego $18 Million Grant for Materials Science Research Center]]></title>
            <link>https://quantumcomputinginfo.com/blog/nsf-awards-uc-san-diego-18-million-grant-for-materials-science-research-center-d0b7f9</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/nsf-awards-uc-san-diego-18-million-grant-for-materials-science-research-center-d0b7f9</guid>
            <pubDate>Mon, 03 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief The National Science Foundation has awarded University of California San Diego researchers a six-year $18 million grant to fund a new Materials Re...]]></description>
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# NSF Awards UC San Diego $18 Million Grant for Materials Science Research Center

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/08/03/nsf-awards-uc-san-diego-18-million-materials-science-grant/) on August 3, 2026.

Insider Brief The National Science Foundation has awarded University of California San Diego researchers a six-year $18 million grant to fund a new Materials Research Science and Engineering Center (MRSEC). These research centers are transformative for the schools that earn them, putting their materials science research efforts into the global spotlight. In addition to research […]

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To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/08/03/nsf-awards-uc-san-diego-18-million-materials-science-grant/)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[OptQC and NTT Strengthen Collaboration on Large-Scale Optical Quantum Computing]]></title>
            <link>https://quantumcomputinginfo.com/blog/optqc-and-ntt-strengthen-collaboration-on-large-scale-optical-quantum-computing-4e4b1d</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/optqc-and-ntt-strengthen-collaboration-on-large-scale-optical-quantum-computing-4e4b1d</guid>
            <pubDate>Mon, 03 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – OptQC Corp. (Headquarters: Toshima-ku, Tokyo; Representative Director and CEO: Kan Takase; hereinafter “OptQC“) and NTT, Inc. (Hea...]]></description>
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# OptQC and NTT Strengthen Collaboration on Large-Scale Optical Quantum Computing

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/08/03/optqc-ntt-large-scale-optical-quantum-computing-collaboration/) on August 3, 2026.

Insider Brief Press release – OptQC Corp. (Headquarters: Toshima-ku, Tokyo; Representative Director and CEO: Kan Takase; hereinafter “OptQC“) and NTT, Inc. (Headquarters: Chiyoda-ku, Tokyo; President and CEO: Akira Shimada; hereinafter “NTT”) have signed a capital and business alliance agreement toward the practical application of a fault-tolerant, one-million-qubit-class optical quantum computer. Under the alliance, NTT plans […]

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To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/08/03/optqc-ntt-large-scale-optical-quantum-computing-collaboration/)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[PsiQuantum Invests $250,000 in South Chicago STEM and Quantum Education Programs]]></title>
            <link>https://quantumcomputinginfo.com/blog/psiquantum-invests-250000-in-south-chicago-stem-and-quantum-education-programs-2aa29c</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/psiquantum-invests-250000-in-south-chicago-stem-and-quantum-education-programs-2aa29c</guid>
            <pubDate>Mon, 03 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Today, PsiQuantum announced a $250,000 philanthropic investment in local schools, higher education institutions, and STEM programs...]]></description>
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# PsiQuantum Invests $250,000 in South Chicago STEM and Quantum Education Programs

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/08/03/psiquantum-south-chicago-training-education-quantum-workforce-development/) on August 3, 2026.

Insider Brief Press release – Today, PsiQuantum announced a $250,000 philanthropic investment in local schools, higher education institutions, and STEM programs to advance the next generation of scientists, engineers, and quantum innovators in South Chicago. As the anchor tenant of the Illinois Quantum and Microelectronics Park (IQMP), PsiQuantum is committed to ensuring young people in […]

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To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/08/03/psiquantum-south-chicago-training-education-quantum-workforce-development/)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[QNu Labs and SRMIST Establish Quantum Communications Lab to Train Educator Cohort]]></title>
            <link>https://quantumcomputinginfo.com/blog/qnu-labs-and-srmist-establish-quantum-communications-lab-to-train-educator-cohort-f72671</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/qnu-labs-and-srmist-establish-quantum-communications-lab-to-train-educator-cohort-f72671</guid>
            <pubDate>Mon, 03 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Indian quantum cybersecurity developer QNu Labs has partnered with the SRM Institute of Science and Technology (SRMIST) to establish a dedicated Quantum Communi...]]></description>
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# QNu Labs and SRMIST Establish Quantum Communications Lab to Train Educator Cohort

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/qnu-labs-and-srmist-establish-quantum-communications-lab-to-train-educator-cohort/) on August 3, 2026.

Indian quantum cybersecurity developer QNu Labs has partnered with the SRM Institute of Science and Technology (SRMIST) to establish a dedicated Quantum Communications Lab and train the university's first certified cohort of faculty members in quantum communications. Supported by India's National Quantum Mission (NQM) and the Department of Science and Technology (DST), the workforce initiative [...] The post QNu Labs and SRMIST Establish Quantum Communications Lab to Train Educator Cohort appeared first on Quantum Computing Report....

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To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/qnu-labs-and-srmist-establish-quantum-communications-lab-to-train-educator-cohort/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Researchers Develops Carbon Quantum Dots From Organic Waste for Pest Repellent Research]]></title>
            <link>https://quantumcomputinginfo.com/blog/researchers-develops-carbon-quantum-dots-from-organic-waste-for-pest-repellent-research-14bcf8</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/researchers-develops-carbon-quantum-dots-from-organic-waste-for-pest-repellent-research-14bcf8</guid>
            <pubDate>Mon, 03 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Green Science Alliance is the Green Tech Startup company to develop cutting-edge technologies for sustainable, carbon neutral soci...]]></description>
            <content:encoded><![CDATA[
# Researchers Develops Carbon Quantum Dots From Organic Waste for Pest Repellent Research

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/08/03/green-science-alliance-carbon-quantum-dots-organic-waste-pest-repellent/) on August 3, 2026.

Insider Brief Press release – Green Science Alliance is the Green Tech Startup company to develop cutting-edge technologies for sustainable, carbon neutral society in energy and environmentally friendly field, and one of their cutting-edge products are called quantum dots. Quantum dots are extremely tiny man-made nanoparticles typically between 10 to 10000 atoms or molecules (1 […]

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To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/08/03/green-science-alliance-carbon-quantum-dots-organic-waste-pest-repellent/)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Rigetti, HPE, and Pittsburgh Supercomputing Center Partner to Build “TangleLab” Hybrid Testbed]]></title>
            <link>https://quantumcomputinginfo.com/blog/rigetti-hpe-and-pittsburgh-supercomputing-center-partner-to-build-tanglelab-hybrid-testbed-ddc1b0</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/rigetti-hpe-and-pittsburgh-supercomputing-center-partner-to-build-tanglelab-hybrid-testbed-ddc1b0</guid>
            <pubDate>Mon, 03 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum computing developer Rigetti Computing (Nasdaq: RGTI) has partnered with Hewlett Packard Enterprise (HPE) and the Pittsburgh Supercomputing Center (PSC)—...]]></description>
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# Rigetti, HPE, and Pittsburgh Supercomputing Center Partner to Build “TangleLab” Hybrid Testbed

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/rigetti-hpe-and-pittsburgh-supercomputing-center-partner-to-build-tanglelab-hybrid-testbed/) on August 3, 2026.

Quantum computing developer Rigetti Computing (Nasdaq: RGTI) has partnered with Hewlett Packard Enterprise (HPE) and the Pittsburgh Supercomputing Center (PSC)—a joint center of Carnegie Mellon University and the University of Pittsburgh—to construct TangleLab, a hybrid quantum-classical supercomputing testbed. Funded by a $5 million grant from the National Science Foundation (NSF) under its Advanced Computing Systems [...] The post Rigetti, HPE, and Pittsburgh Supercomputing Center Partner to Build “TangleLab” Hybrid Testbed appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/rigetti-hpe-and-pittsburgh-supercomputing-center-partner-to-build-tanglelab-hybrid-testbed/)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[SEALSQ Highlights Role of Crypto-Agility in Preparing for Future Cryptographic Threats]]></title>
            <link>https://quantumcomputinginfo.com/blog/sealsq-highlights-role-of-crypto-agility-in-preparing-for-future-cryptographic-threats-b55106</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/sealsq-highlights-role-of-crypto-agility-in-preparing-for-future-cryptographic-threats-b55106</guid>
            <pubDate>Mon, 03 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – SEALSQ Corp (NASDAQ: LAES) (“SEALSQ” or the “Company”), a global leader in post-quantum semiconductor and cybersecurity technology...]]></description>
            <content:encoded><![CDATA[
# SEALSQ Highlights Role of Crypto-Agility in Preparing for Future Cryptographic Threats

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/08/03/sealsq-hardware-based-crypto-agility-ai-accelerates-cryptanalysis/) on August 3, 2026.

Insider Brief Press release – SEALSQ Corp (NASDAQ: LAES) (“SEALSQ” or the “Company”), a global leader in post-quantum semiconductor and cybersecurity technology, today highlighted the growing importance of crypto-agile hardware architectures in light of new research into how artificial intelligence can accelerate the discovery of potential weaknesses in cryptographic algorithms, and compress the timeframe in […]

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To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/08/03/sealsq-hardware-based-crypto-agility-ai-accelerates-cryptanalysis/)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Turning molecules into reliable electronic devices]]></title>
            <link>https://quantumcomputinginfo.com/blog/turning-molecules-into-reliable-electronic-devices-19e6ea</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/turning-molecules-into-reliable-electronic-devices-19e6ea</guid>
            <pubDate>Mon, 03 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[A new fabrication platform integrates molecules into electronic devices, opening the door to emerging computing technologies....]]></description>
            <content:encoded><![CDATA[
# Turning molecules into reliable electronic devices

> **Source:** Originally published on [MIT News Quantum](https://news.mit.edu/2026/turning-molecules-into-reliable-electronic-devices-0803) on August 3, 2026.

A new fabrication platform integrates molecules into electronic devices, opening the door to emerging computing technologies.

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To read the full article, visit the original source page:

[Read the full article on MIT News Quantum →](https://news.mit.edu/2026/turning-molecules-into-reliable-electronic-devices-0803)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[UC Berkeley and QuantrolOx Sign Five-Year Partnership to Industrialize Quantum Processing]]></title>
            <link>https://quantumcomputinginfo.com/blog/uc-berkeley-and-quantrolox-sign-five-year-partnership-to-industrialize-quantum-processing-8eced2</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/uc-berkeley-and-quantrolox-sign-five-year-partnership-to-industrialize-quantum-processing-8eced2</guid>
            <pubDate>Mon, 03 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[The University of California, Berkeley—on behalf of its Department of Physics and the Roger Herst Quantum Nexus—has signed a five-year Memorandum of Understandi...]]></description>
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# UC Berkeley and QuantrolOx Sign Five-Year Partnership to Industrialize Quantum Processing

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/uc-berkeley-and-quantrolox-sign-five-year-partnership-to-industrialize-quantum-processing/) on August 3, 2026.

The University of California, Berkeley—on behalf of its Department of Physics and the Roger Herst Quantum Nexus—has signed a five-year Memorandum of Understanding (MOU) with quantum automation developer QuantrolOx to advance the industrialization of superconducting quantum computing. Effective July 7, 2026, the non-binding framework combines UC Berkeley’s open, "white-box" superconducting qubit hardware testbeds with QuantrolOx's [...] The post UC Berkeley and QuantrolOx Sign Five-Year Partnership to Industrialize Quantum Processing appeared first on Quantum Computing Report....

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To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/uc-berkeley-and-quantrolox-sign-five-year-partnership-to-industrialize-quantum-processing/)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Western Quantum Export Controls Are Evolving Into an Industrial Strategy, IISS Analysis Says]]></title>
            <link>https://quantumcomputinginfo.com/blog/western-quantum-export-controls-are-evolving-into-an-industrial-strategy-iiss-analysis-says-184b7c</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/western-quantum-export-controls-are-evolving-into-an-industrial-strategy-iiss-analysis-says-184b7c</guid>
            <pubDate>Mon, 03 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Western governments are no longer using export controls simply to restrict sensitive quantum technologies—they are increasingly using them to shap...]]></description>
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# Western Quantum Export Controls Are Evolving Into an Industrial Strategy, IISS Analysis Says

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/08/03/western-quantum-export-controls-are-evolving-into-an-industrial-strategy-iiss-analysis-says/) on August 3, 2026.

Insider Brief Western governments are no longer using export controls simply to restrict sensitive quantum technologies—they are increasingly using them to shape the future structure of the global quantum industry, according to a new analysis from the International Institute for Strategic Studies (IISS). According to the report, the United States and several allies have fundamentally […]

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To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/08/03/western-quantum-export-controls-are-evolving-into-an-industrial-strategy-iiss-analysis-says/)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Cascading amplifiers can create exponentially large coherence]]></title>
            <link>https://quantumcomputinginfo.com/blog/cascading-amplifiers-can-create-exponentially-large-coherence-cd5029</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/cascading-amplifiers-can-create-exponentially-large-coherence-cd5029</guid>
            <pubDate>Mon, 03 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.28716v1 Announce Type: new Abstract: A standard laser beam has photon degeneracy, or coherence, $\mathfrak{C}$, of at most $8\mu^2$, where $\mu$ is t...]]></description>
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# Cascading amplifiers can create exponentially large coherence

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.28716) on August 3, 2026.

arXiv:2607.28716v1 Announce Type: new Abstract: A standard laser beam has photon degeneracy, or coherence, $\mathfrak\{C\}$, of at most $8\mu^2$, where $\mu$ is the number of photons in the laser itself. Even quantum-engineered lasers, if required to produce a beam with the standard statistical properties, have limited coherence, scaling as $\mu^4$. Moreover, such lasers (still unrealised) require very unconventional gain and output-coupling mechanisms. Here, we propose a different path to increasing $\mathfrak\{C\}$: cascaded linear amplifiers, with conventional couplings. By dropping the requirement on the beam's properties, this approach can, in theory, achieve $\mathfrak\{C\}$ scaling exponentially in $\mu$. Here $\mu$ is the total source excitation number, across all the amplifiers. T...

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To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.28716)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Detection-resolution limits of large-momentum-transfer atom gravimetry]]></title>
            <link>https://quantumcomputinginfo.com/blog/detection-resolution-limits-of-large-momentum-transfer-atom-gravimetry-ca6070</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/detection-resolution-limits-of-large-momentum-transfer-atom-gravimetry-ca6070</guid>
            <pubDate>Mon, 03 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.28749v1 Announce Type: new Abstract: Large momentum transfer (LMT) enhances the gravitational phase of a light-pulse atom interferometer by a factor...]]></description>
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# Detection-resolution limits of large-momentum-transfer atom gravimetry

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.28749) on August 3, 2026.

arXiv:2607.28749v1 Announce Type: new Abstract: Large momentum transfer (LMT) enhances the gravitational phase of a light-pulse atom interferometer by a factor $n$, while mirrorless operation with momentum-resolved detection can quadruple the phase-carrying quantum Fisher information. These gains compete in practice because the momentum-space fringe period scales as $1/n$, making the fringe signal increasingly vulnerable to finite detector resolution. We analyze this trade-off in a solvable model with instantaneous lossless $n$-photon pulses, a Gaussian source, and Gaussian detection blur, allowing continuous interpolation between Kasevich--Chu and mirrorless geometries. Closed-form expressions for the blurred output distributions and classical Fisher information are obtained, with a fring...

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To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.28749)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Experimental Demonstration of a Measurement-Feedback Quantum Information Engine]]></title>
            <link>https://quantumcomputinginfo.com/blog/experimental-demonstration-of-a-measurement-feedback-quantum-information-engine-e89a18</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/experimental-demonstration-of-a-measurement-feedback-quantum-information-engine-e89a18</guid>
            <pubDate>Mon, 03 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.28702v1 Announce Type: new Abstract: Harnessing quantum inner friction in a finite-time stroke of quantum engine to extract work remains an open expe...]]></description>
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# Experimental Demonstration of a Measurement-Feedback Quantum Information Engine

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.28702) on August 3, 2026.

arXiv:2607.28702v1 Announce Type: new Abstract: Harnessing quantum inner friction in a finite-time stroke of quantum engine to extract work remains an open experimental challenge. Here we address this issue by experimentally establishing and demonstrating an innovative measurement-feedback quantum information engine model in the trapped 40Ca+ ion system, where the projective measurement replaces the hot reservoir as a nonthermal energy source and feedback-control conditionally steers the system through either unitary compression-expansion strokes or thermalization. We experimentally show that the engine, starting from arbitrary initial states, converges to a stable operating regime with a fully resolved energetic balance, and by controlling the measurement angle and stroke duration, the me...

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To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.28702)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Gaussian-augmented bosonic matrix-product states: theory and applications]]></title>
            <link>https://quantumcomputinginfo.com/blog/gaussian-augmented-bosonic-matrix-product-states-theory-and-applications-128948</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/gaussian-augmented-bosonic-matrix-product-states-theory-and-applications-128948</guid>
            <pubDate>Mon, 03 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.28753v1 Announce Type: new Abstract: We propose and analyze the structure of a family of bosonic quantum many-body states that have the following fea...]]></description>
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# Gaussian-augmented bosonic matrix-product states: theory and applications

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.28753) on August 3, 2026.

arXiv:2607.28753v1 Announce Type: new Abstract: We propose and analyze the structure of a family of bosonic quantum many-body states that have the following features: (i) they include all pure Gaussian states and finite-dimensional matrix-product states as subclasses; (ii) their expectation values can be efficiently computed, allowing them to be used, among other things, for variational calculations; (iii) they admit exact parent Hamiltonians expressed as simple functions of the bosonic creation and annihilation operators....

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To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.28753)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Quantum Resources in Disorder-Free Localization Dynamics of Gauge Theories]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-resources-in-disorder-free-localization-dynamics-of-gauge-theories-66f4d8</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-resources-in-disorder-free-localization-dynamics-of-gauge-theories-66f4d8</guid>
            <pubDate>Mon, 03 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.28730v1 Announce Type: new Abstract: Quantum-state complexity diagnostics provide valuable insight into many-body dynamics, information scrambling, a...]]></description>
            <content:encoded><![CDATA[
# Quantum Resources in Disorder-Free Localization Dynamics of Gauge Theories

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.28730) on August 3, 2026.

arXiv:2607.28730v1 Announce Type: new Abstract: Quantum-state complexity diagnostics provide valuable insight into many-body dynamics, information scrambling, and quantum computation. Here, we investigate the real-time dynamics of quantum complexity in $1+1$-dimensional Abelian U(1) and non-Abelian SU(2) lattice gauge theories (LGTs), focusing on the disorder-free localization (DFL) regime. Using stabilizer R\'enyi entropy, participation R\'enyi entropy, and fermionic non-Gaussianity as measures of complexity, we observe, for both theories, two main behaviors as a function of the gauge coupling: at intermediate values, a power-law relaxation towards saturation, consistent with observations in many-body localization, and, at sufficiently large values, an ultraslow double-logarithmic growth,...

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To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.28730)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Cleveland Clinic and IBM Develop Quantum Machine Learning Model for Cancer Neoantigen Prediction]]></title>
            <link>https://quantumcomputinginfo.com/blog/cleveland-clinic-and-ibm-develop-quantum-machine-learning-model-for-cancer-neoantigen-prediction-e02929</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/cleveland-clinic-and-ibm-develop-quantum-machine-learning-model-for-cancer-neoantigen-prediction-e02929</guid>
            <pubDate>Sat, 01 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Researchers from the Cleveland Clinic and IBM Research have developed a quantum machine learning framework to predict which tumor gene mutations generate immuno...]]></description>
            <content:encoded><![CDATA[
# Cleveland Clinic and IBM Develop Quantum Machine Learning Model for Cancer Neoantigen Prediction

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/cleveland-clinic-and-ibm-develop-quantum-machine-learning-model-for-cancer-neoantigen-prediction/) on August 1, 2026.

Researchers from the Cleveland Clinic and IBM Research have developed a quantum machine learning framework to predict which tumor gene mutations generate immunogenic neoantigens—abnormal cell-surface proteins that trigger a therapeutic T-cell immune response. Published in Science Advances under the title "Quantum convolutional HLA immunogenic peptide prediction (Q-CHIPP): Next-generation neoantigen prediction with quantum neural network," the [...] The post Cleveland Clinic and IBM Develop Quantum Machine Learning Model for Cancer Neoantigen Prediction appeared first on Quantum Computing Report....

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To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/cleveland-clinic-and-ibm-develop-quantum-machine-learning-model-for-cancer-neoantigen-prediction/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[EY Expands In-House Capabilities with On-Site Quantum Computer Hub in Canada]]></title>
            <link>https://quantumcomputinginfo.com/blog/ey-expands-in-house-capabilities-with-on-site-quantum-computer-hub-in-canada-27c5aa</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ey-expands-in-house-capabilities-with-on-site-quantum-computer-hub-in-canada-27c5aa</guid>
            <pubDate>Sat, 01 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Global professional services firm Ernst & Young (EY) has announced the addition of an on-site quantum computer to its in-house technology stack. Led by EY Canad...]]></description>
            <content:encoded><![CDATA[
# EY Expands In-House Capabilities with On-Site Quantum Computer Hub in Canada

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/ey-expands-in-house-capabilities-with-on-site-quantum-computer-hub-in-canada/) on August 1, 2026.

Global professional services firm Ernst & Young (EY) has announced the addition of an on-site quantum computer to its in-house technology stack. Led by EY Canada, the deployment serves as a key innovation hub within EY's global enterprise tech strategy. The hardware installation forms part of a broader $3 billion global investment in artificial intelligence [...] The post EY Expands In-House Capabilities with On-Site Quantum Computer Hub in Canada appeared first on Quantum Computing Report.

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To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/ey-expands-in-house-capabilities-with-on-site-quantum-computer-hub-in-canada/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Gil Kalai (Hebrew University / Reichman University): Why noise may doom quantum computers]]></title>
            <link>https://quantumcomputinginfo.com/blog/gil-kalai-hebrew-university-reichman-university-why-noise-may-doom-quantum-computers-ba8f73</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/gil-kalai-hebrew-university-reichman-university-why-noise-may-doom-quantum-computers-ba8f73</guid>
            <pubDate>Sat, 01 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Yuval Boger interviews mathematician Gil Kalai about his long-standing skepticism regarding scalable quantum computing. Kalai explains two main arguments behind...]]></description>
            <content:encoded><![CDATA[
# Gil Kalai (Hebrew University / Reichman University): Why noise may doom quantum computers

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/08/01/gil-kalai-hebrew-university-reichman-university-why-noise-may-doom-quantum-computers/) on August 1, 2026.

Yuval Boger interviews mathematician Gil Kalai about his long-standing skepticism regarding scalable quantum computing. Kalai explains two main arguments behind his theory: correlated noise that may defeat quantum error correction and complexity-based limits on NISQ devices achieving quantum supremacy. They discuss experimental claims such as Google’s 2019 result, potential tests of Kalai’s conjectures, and the […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/08/01/gil-kalai-hebrew-university-reichman-university-why-noise-may-doom-quantum-computers/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[IQM and Deutsche Bahn Execute Hybrid Quantum Algorithm for Railway Scheduling]]></title>
            <link>https://quantumcomputinginfo.com/blog/iqm-and-deutsche-bahn-execute-hybrid-quantum-algorithm-for-railway-scheduling-9aa235</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/iqm-and-deutsche-bahn-execute-hybrid-quantum-algorithm-for-railway-scheduling-9aa235</guid>
            <pubDate>Sat, 01 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Superconducting quantum computer developer IQM Quantum Computers (Nasdaq: IQMX) and European rail operator Deutsche Bahn have published joint research demonstra...]]></description>
            <content:encoded><![CDATA[
# IQM and Deutsche Bahn Execute Hybrid Quantum Algorithm for Railway Scheduling

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/iqm-and-deutsche-bahn-execute-hybrid-quantum-algorithm-for-railway-scheduling/) on August 1, 2026.

Superconducting quantum computer developer IQM Quantum Computers (Nasdaq: IQMX) and European rail operator Deutsche Bahn have published joint research demonstrating the execution of a hybrid quantum-classical optimization algorithm on real-world operational railway data. Executed end-to-end on IQM’s Emerald quantum processor, the study addresses the complex challenge of rolling stock planning—assigning physical train units to scheduled [...] The post IQM and Deutsche Bahn Execute Hybrid Quantum Algorithm for Railway Scheduling appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/iqm-and-deutsche-bahn-execute-hybrid-quantum-algorithm-for-railway-scheduling/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[NSF Awards UC San Diego $18 Million MRSEC Grant for Quantum Materials Development in $108 Million National Materials Initiative]]></title>
            <link>https://quantumcomputinginfo.com/blog/nsf-awards-uc-san-diego-18-million-mrsec-grant-for-quantum-materials-development-in-108-million-national-materials-initiative-86b80f</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/nsf-awards-uc-san-diego-18-million-mrsec-grant-for-quantum-materials-development-in-108-million-national-materials-initiative-86b80f</guid>
            <pubDate>Sat, 01 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[The U.S. National Science Foundation (NSF) has awarded the University of California San Diego (UC San Diego) an $18 million, six-year grant (NSF Award #2614051)...]]></description>
            <content:encoded><![CDATA[
# NSF Awards UC San Diego $18 Million MRSEC Grant for Quantum Materials Development in $108 Million National Materials Initiative

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/nsf-awards-uc-san-diego-18-million-mrsec-grant-for-quantum-materials-development-in-108-million-national-materials-initiative/) on August 1, 2026.

The U.S. National Science Foundation (NSF) has awarded the University of California San Diego (UC San Diego) an $18 million, six-year grant (NSF Award #2614051) to fund a Materials Research Science and Engineering Center (MRSEC) dedicated to developing advanced quantum materials. The award is part of a broader $108 million NSF deployment funding six national [...] The post NSF Awards UC San Diego $18 Million MRSEC Grant for Quantum Materials Development in $108 Million National Materials Initiative appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/nsf-awards-uc-san-diego-18-million-mrsec-grant-for-quantum-materials-development-in-108-million-national-materials-initiative/)
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            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Quantum computer completes verified task beyond practical reach of classical simulations]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-computer-completes-verified-task-beyond-practical-reach-of-classical-simulations-e49e14</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-computer-completes-verified-task-beyond-practical-reach-of-classical-simulations-e49e14</guid>
            <pubDate>Sat, 01 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[IBM and researchers from the University of Chicago announced a demonstration in quantum computing that meets the fundamental criteria for "quantum advantage"—th...]]></description>
            <content:encoded><![CDATA[
# Quantum computer completes verified task beyond practical reach of classical simulations

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-quantum-task-classical-simulations.html) on August 1, 2026.

IBM and researchers from the University of Chicago announced a demonstration in quantum computing that meets the fundamental criteria for "quantum advantage"—the point where quantum computers can be confirmed to have outperformed classical computers on trusted computations.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-quantum-task-classical-simulations.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Two Hands Corporation Begins External Beta Testing for EntangleX Quantum Simulator]]></title>
            <link>https://quantumcomputinginfo.com/blog/two-hands-corporation-begins-external-beta-testing-for-entanglex-quantum-simulator-e5446e</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/two-hands-corporation-begins-external-beta-testing-for-entanglex-quantum-simulator-e5446e</guid>
            <pubDate>Sat, 01 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Micro-cap technology holding firm Two Hands Corporation (OTC: TWOH)—which is in the process of changing its corporate identity to Quantum X Inc.—has announced t...]]></description>
            <content:encoded><![CDATA[
# Two Hands Corporation Begins External Beta Testing for EntangleX Quantum Simulator

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/two-hands-corporation-begins-external-beta-testing-for-entanglex-quantum-simulator/) on August 1, 2026.

Micro-cap technology holding firm Two Hands Corporation (OTC: TWOH)—which is in the process of changing its corporate identity to Quantum X Inc.—has announced that the base user interface for its internally developed quantum circuit simulation software, EntangleX, is now open to selected external partners for third-party beta testing. The milestone follows a phase of internal [...] The post Two Hands Corporation Begins External Beta Testing for EntangleX Quantum Simulator appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/two-hands-corporation-begins-external-beta-testing-for-entanglex-quantum-simulator/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Unusual metal oxide shows signs of magnetism under lattice strain in ultrathin layers]]></title>
            <link>https://quantumcomputinginfo.com/blog/unusual-metal-oxide-shows-signs-of-magnetism-under-lattice-strain-in-ultrathin-layers-86e697</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/unusual-metal-oxide-shows-signs-of-magnetism-under-lattice-strain-in-ultrathin-layers-86e697</guid>
            <pubDate>Sat, 01 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Ruthenium dioxide (RuO2) is a metal oxide that commonly serves as an important metallic conductor, quantum material and industrial electrocatalyst. While there...]]></description>
            <content:encoded><![CDATA[
# Unusual metal oxide shows signs of magnetism under lattice strain in ultrathin layers

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-unusual-metal-oxide-magnetism-lattice.html) on August 1, 2026.

Ruthenium dioxide (RuO2) is a metal oxide that commonly serves as an important metallic conductor, quantum material and industrial electrocatalyst. While there have been debates surrounding the magnetic properties of RuO2, it is generally thought to be nonmagnetic in its bulk form. But now, a new study, published in Science Advances, has found that very thin layers of RuO2 can become magnetic when its lattice is placed under strain.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-unusual-metal-oxide-magnetism-lattice.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Vexlum Establishes UK Operations and Appoints Dr. Stefan Truppe as Managing Director]]></title>
            <link>https://quantumcomputinginfo.com/blog/vexlum-establishes-uk-operations-and-appoints-dr-stefan-truppe-as-managing-director-3c2f07</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/vexlum-establishes-uk-operations-and-appoints-dr-stefan-truppe-as-managing-director-3c2f07</guid>
            <pubDate>Sat, 01 Aug 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[High-power semiconductor laser developer Vexlum has announced the establishment of a dedicated R&D laboratory in London alongside the appointment of Dr. Stefan...]]></description>
            <content:encoded><![CDATA[
# Vexlum Establishes UK Operations and Appoints Dr. Stefan Truppe as Managing Director

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/vexlum-establishes-uk-operations-and-appoints-dr-stefan-truppe-as-managing-director/) on August 1, 2026.

High-power semiconductor laser developer Vexlum has announced the establishment of a dedicated R&D laboratory in London alongside the appointment of Dr. Stefan Truppe as Managing Director of Vexlum UK. Spun out from Tampere University in Finland, the company specializes in Vertical-External-Cavity Surface-Emitting Laser (VECSEL) technology, producing high-power, single-frequency laser engines across visible and deep-ultraviolet (UV) [...] The post Vexlum Establishes UK Operations and Appoints Dr. Stefan Truppe as Managing Director appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/vexlum-establishes-uk-operations-and-appoints-dr-stefan-truppe-as-managing-director/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[BlueQubit Supports Qedma, IBM and RIKEN Study on Error-Mitigated Quantum Simulation]]></title>
            <link>https://quantumcomputinginfo.com/blog/bluequbit-supports-qedma-ibm-and-riken-study-on-error-mitigated-quantum-simulation-d7ce9a</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/bluequbit-supports-qedma-ibm-and-riken-study-on-error-mitigated-quantum-simulation-d7ce9a</guid>
            <pubDate>Fri, 31 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – When will meaningful applications of quantum computers arrive? The standard answer has been at least five to ten years, while we w...]]></description>
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# BlueQubit Supports Qedma, IBM and RIKEN Study on Error-Mitigated Quantum Simulation

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/31/bluequbit-qedma-ibm-riken-quantum-simulation-study/) on July 31, 2026.

Insider Brief Press release – When will meaningful applications of quantum computers arrive? The standard answer has been at least five to ten years, while we wait for fully fault-tolerant hardware with millions of qubits. A new landmark study disagrees, saying Quantum Advantage is already here. BlueQubit supported Qedma Quantum Computing alongside IBM and RIKEN in demonstrating that today’s quantum […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/31/bluequbit-qedma-ibm-riken-quantum-simulation-study/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Diamond's newfound defect may tame vibrations that hinder quantum light sources]]></title>
            <link>https://quantumcomputinginfo.com/blog/diamonds-newfound-defect-may-tame-vibrations-that-hinder-quantum-light-sources-b7aa2c</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/diamonds-newfound-defect-may-tame-vibrations-that-hinder-quantum-light-sources-b7aa2c</guid>
            <pubDate>Fri, 31 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Researchers in the Department of Electrical and Computer Engineering at the University of Illinois Urbana-Champaign have discovered a new type of quantum light...]]></description>
            <content:encoded><![CDATA[
# Diamond''s newfound defect may tame vibrations that hinder quantum light sources

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-diamond-newfound-defect-vibrations-hinder.html) on July 31, 2026.

Researchers in the Department of Electrical and Computer Engineering at the University of Illinois Urbana-Champaign have discovered a new type of quantum light emitter in diamonds that could help overcome a number of challenges facing quantum technologies.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-diamond-newfound-defect-vibrations-hinder.html)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[French National Quantum Update: July 2026]]></title>
            <link>https://quantumcomputinginfo.com/blog/french-national-quantum-update-july-2026-f80123</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/french-national-quantum-update-july-2026-f80123</guid>
            <pubDate>Fri, 31 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Executive Summary France’s quantum ecosystem continued to expand in July 2026 through a combination of government oversight, industrial scaling, international p...]]></description>
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# French National Quantum Update: July 2026

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/31/french-national-quantum-update-july-2026/) on July 31, 2026.

Executive Summary France’s quantum ecosystem continued to expand in July 2026 through a combination of government oversight, industrial scaling, international partnerships and commercial growth, even as policymakers acknowledged intensifying global competition. The French Court of Auditors concluded that the country’s National Quantum Strategy has been well managed but warned that the international landscape has evolved […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/31/french-national-quantum-update-july-2026/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[IBM and University of Chicago Demonstrate Verified Logical Quantum Computation Beyond Classical Simulation]]></title>
            <link>https://quantumcomputinginfo.com/blog/ibm-and-university-of-chicago-demonstrate-verified-logical-quantum-computation-beyond-classical-simulation-7d4b8c</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ibm-and-university-of-chicago-demonstrate-verified-logical-quantum-computation-beyond-classical-simulation-7d4b8c</guid>
            <pubDate>Fri, 31 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – IBM (NYSE: IBM) and researchers from the University of Chicago today announced a demonstration in quantum computing that achieves...]]></description>
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# IBM and University of Chicago Demonstrate Verified Logical Quantum Computation Beyond Classical Simulation

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/31/ibm-university-of-chicago-verified-logical-quantum-computation/) on July 31, 2026.

Insider Brief Press release – IBM (NYSE: IBM) and researchers from the University of Chicago today announced a demonstration in quantum computing that achieves the fundamental criteria for quantum advantage: performing computations beyond the reach of leading classical simulation methods while providing trust that the computation returned accurate results. In their new paper, “Sampling hard circuits with verifiably high […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/31/ibm-university-of-chicago-verified-logical-quantum-computation/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[IBM CEO Expects Quantum Computing to Drive Revenue by 2020s, Trillion-Dollar Value by End of 2030s]]></title>
            <link>https://quantumcomputinginfo.com/blog/ibm-ceo-expects-quantum-computing-to-drive-revenue-by-2020s-trillion-dollar-value-by-end-of-2030s-b02c40</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ibm-ceo-expects-quantum-computing-to-drive-revenue-by-2020s-trillion-dollar-value-by-end-of-2030s-b02c40</guid>
            <pubDate>Fri, 31 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief IBM expects quantum computing to begin making a measurable contribution to the company’s financial results within the next few years, as the techn...]]></description>
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# IBM CEO Expects Quantum Computing to Drive Revenue by 2020s, Trillion-Dollar Value by End of 2030s

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/31/ibm-ceo-expects-quantum-computing-to-drive-revenue-by-2020s-trillion-dollar-value-by-end-of-2030s/) on July 31, 2026.

Insider Brief IBM expects quantum computing to begin making a measurable contribution to the company’s financial results within the next few years, as the technology moves closer to commercial use, Chief Executive Officer Arvind Krishna told CNBC. Speaking on CNBC’s “Mad Money,” Krishna said IBM believes quantum computing is approaching an inflection point after years […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/31/ibm-ceo-expects-quantum-computing-to-drive-revenue-by-2020s-trillion-dollar-value-by-end-of-2030s/)
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            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[IonQ Completes Acquisition of SkyWater Technology]]></title>
            <link>https://quantumcomputinginfo.com/blog/ionq-completes-acquisition-of-skywater-technology-2d3cbf</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ionq-completes-acquisition-of-skywater-technology-2d3cbf</guid>
            <pubDate>Fri, 31 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – IonQ (NYSE: IONQ), the world’s leading quantum platform company, today completed its acquisition of SkyWater Technology (NASDAQ: S...]]></description>
            <content:encoded><![CDATA[
# IonQ Completes Acquisition of SkyWater Technology

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/31/ionq-completes-skywater-acquisition-quantum-manufacturing/) on July 31, 2026.

Insider Brief Press release – IonQ (NYSE: IONQ), the world’s leading quantum platform company, today completed its acquisition of SkyWater Technology (NASDAQ: SKYT), the largest exclusively U.S.-based semiconductor foundry. “Acquiring SkyWater crystalizes IonQ’s vision to serve as a technology leader, merchant supplier and ecosystem enabler across the entire quantum industry. We are investing in capabilities […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/31/ionq-completes-skywater-acquisition-quantum-manufacturing/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[IonQ Completes Acquisition of SkyWater Technology, Establishing Vertically Integrated Quantum Platform]]></title>
            <link>https://quantumcomputinginfo.com/blog/ionq-completes-acquisition-of-skywater-technology-establishing-vertically-integrated-quantum-platform-3e9952</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ionq-completes-acquisition-of-skywater-technology-establishing-vertically-integrated-quantum-platform-3e9952</guid>
            <pubDate>Fri, 31 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Trapped-ion quantum computing developer IonQ (NYSE: IONQ) has officially completed its acquisition of SkyWater Technology (NASDAQ: SKYT), the largest exclusivel...]]></description>
            <content:encoded><![CDATA[
# IonQ Completes Acquisition of SkyWater Technology, Establishing Vertically Integrated Quantum Platform

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/ionq-completes-acquisition-of-skywater-technology-establishing-vertically-integrated-quantum-platform/) on July 31, 2026.

Trapped-ion quantum computing developer IonQ (NYSE: IONQ) has officially completed its acquisition of SkyWater Technology (NASDAQ: SKYT), the largest exclusively U.S.-based semiconductor foundry. Following final regulatory approvals, the transaction closed on July 31, 2026, establishing IonQ as a vertically integrated quantum platform company with internal ownership of design, wafer fabrication, advanced packaging, and system-level deployment. [...] The post IonQ Completes Acquisition of SkyWater Technology, Establishing Vertically Integrated Quantum Platform appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/ionq-completes-acquisition-of-skywater-technology-establishing-vertically-integrated-quantum-platform/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Less-explored form of quantum code could be more powerful—and more stable—than its alternative in error correction]]></title>
            <link>https://quantumcomputinginfo.com/blog/less-explored-form-of-quantum-code-could-be-more-powerfuland-more-stablethan-its-alternative-in-error-correction-7d5a05</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/less-explored-form-of-quantum-code-could-be-more-powerfuland-more-stablethan-its-alternative-in-error-correction-7d5a05</guid>
            <pubDate>Fri, 31 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[In mathematics and getting dressed, some processes are commutative, while others are noncommutative. Commutative means the order doesn't matter (3 + 2 is the sa...]]></description>
            <content:encoded><![CDATA[
# Less-explored form of quantum code could be more powerful—and more stable—than its alternative in error correction

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-explored-quantum-code-powerful-stable.html) on July 31, 2026.

In mathematics and getting dressed, some processes are commutative, while others are noncommutative. Commutative means the order doesn't matter (3 + 2 is the same as 2 + 3, and it doesn't matter which sock goes on first). Noncommutative means the order does matter.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-explored-quantum-code-powerful-stable.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Pusan National University and UNIST Demonstrate Hybrid Quantum Interconnect Benchmark]]></title>
            <link>https://quantumcomputinginfo.com/blog/pusan-national-university-and-unist-demonstrate-hybrid-quantum-interconnect-benchmark-6f40a8</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/pusan-national-university-and-unist-demonstrate-hybrid-quantum-interconnect-benchmark-6f40a8</guid>
            <pubDate>Fri, 31 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Researchers at Pusan National University and the Ulsan National Institute of Science and Technology (UNIST) have demonstrated direct two-photon interference bet...]]></description>
            <content:encoded><![CDATA[
# Pusan National University and UNIST Demonstrate Hybrid Quantum Interconnect Benchmark

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/pusan-national-university-and-unist-demonstrate-hybrid-quantum-interconnect-benchmark/) on July 31, 2026.

Researchers at Pusan National University and the Ulsan National Institute of Science and Technology (UNIST) have demonstrated direct two-photon interference between two physically distinct, un-synchronized quantum light sources: a warm cesium atomic vapor ensemble and a semiconductor quantum dot (QD). Published in Light: Science & Applications, the breakthrough achieves photon indistinguishability across dissimilar quantum hardware [...] The post Pusan National University and UNIST Demonstrate Hybrid Quantum Interconnect Benchmark appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/pusan-national-university-and-unist-demonstrate-hybrid-quantum-interconnect-benchmark/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[SEALSQ Begins Commercial Deployment of Miraex Quantum Photonics Technology]]></title>
            <link>https://quantumcomputinginfo.com/blog/sealsq-begins-commercial-deployment-of-miraex-quantum-photonics-technology-d21514</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/sealsq-begins-commercial-deployment-of-miraex-quantum-photonics-technology-d21514</guid>
            <pubDate>Fri, 31 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – SEALSQ Corp (NASDAQ: LAES), (“SEALSQ” or “Company”), a company focused on semiconductors, PKI, and post-quantum technology solutio...]]></description>
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# SEALSQ Begins Commercial Deployment of Miraex Quantum Photonics Technology

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/31/sealsq-launches-commercial-phase-of-miraex-quantum-photonics-technology/) on July 31, 2026.

Insider Brief Press release – SEALSQ Corp (NASDAQ: LAES), (“SEALSQ” or “Company”), a company focused on semiconductors, PKI, and post-quantum technology solutions, today announced the start of the commercial phase of the groundbreaking quantum photonics technology developed by Miraex SA, following the 100% acquisition of the Swiss company in June 2026. The acquisition represented a […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/31/sealsq-launches-commercial-phase-of-miraex-quantum-photonics-technology/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Two independent studies push semiconductor qubits towards practical scales]]></title>
            <link>https://quantumcomputinginfo.com/blog/two-independent-studies-push-semiconductor-qubits-towards-practical-scales-b0dc64</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/two-independent-studies-push-semiconductor-qubits-towards-practical-scales-b0dc64</guid>
            <pubDate>Fri, 31 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Semiconductor spin qubits are one of the most promising building blocks for future quantum computers, but turning them into a working, large-scale quantum compu...]]></description>
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# Two independent studies push semiconductor qubits towards practical scales

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-independent-semiconductor-qubits-scales.html) on July 31, 2026.

Semiconductor spin qubits are one of the most promising building blocks for future quantum computers, but turning them into a working, large-scale quantum computer has so far proven difficult. For now, two big questions remain open: how to connect qubits that aren't sitting right next to each other, and how to control huge numbers of them without an unmanageable tangle of wiring.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-independent-semiconductor-qubits-scales.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[UC San Diego Advances Quantum Metamaterials for Ultrafast Optical Computing]]></title>
            <link>https://quantumcomputinginfo.com/blog/uc-san-diego-advances-quantum-metamaterials-for-ultrafast-optical-computing-a869b8</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/uc-san-diego-advances-quantum-metamaterials-for-ultrafast-optical-computing-a869b8</guid>
            <pubDate>Fri, 31 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief PRESS RELEASE — Quantum metamaterials are one of the two research themes of the UC San Diego Materials Research Science and Engineering Center (MR...]]></description>
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# UC San Diego Advances Quantum Metamaterials for Ultrafast Optical Computing

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/31/uc-san-diego-advances-quantum-metamaterials-for-ultrafast-optical-computing/) on July 31, 2026.

Insider Brief PRESS RELEASE — Quantum metamaterials are one of the two research themes of the UC San Diego Materials Research Science and Engineering Center (MRSEC), which is supported by the U.S. National Science Foundation (NSF). Quantum metamaterials are a cutting-edge subset of metamaterials. In general, metamaterials control how light moves through the material — […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/31/uc-san-diego-advances-quantum-metamaterials-for-ultrafast-optical-computing/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[U.S. Naval Research Laboratory Outlines Strategic Quantum Research Priorities]]></title>
            <link>https://quantumcomputinginfo.com/blog/us-naval-research-laboratory-outlines-strategic-quantum-research-priorities-fe18a3</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/us-naval-research-laboratory-outlines-strategic-quantum-research-priorities-fe18a3</guid>
            <pubDate>Fri, 31 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[The U.S. Naval Research Laboratory (NRL) has highlighted the operational roadmap of its Quantum Science Institute (QSI), aligning the laboratory's research ente...]]></description>
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# U.S. Naval Research Laboratory Outlines Strategic Quantum Research Priorities

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/u-s-naval-research-laboratory-outlines-strategic-quantum-research-priorities/) on July 31, 2026.

The U.S. Naval Research Laboratory (NRL) has highlighted the operational roadmap of its Quantum Science Institute (QSI), aligning the laboratory's research enterprise with national directives under Executive Order 14413 ("Ushering in the Next Frontier of Quantum Innovation"). Formally established in June 2025 as the primary quantum research center for the U.S. Navy, the institute serves [...] The post U.S. Naval Research Laboratory Outlines Strategic Quantum Research Priorities appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/u-s-naval-research-laboratory-outlines-strategic-quantum-research-priorities/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Why Crypto-Agility Matters for Post-Quantum Cryptography Migration]]></title>
            <link>https://quantumcomputinginfo.com/blog/why-crypto-agility-matters-for-post-quantum-cryptography-migration-ccc4ec</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/why-crypto-agility-matters-for-post-quantum-cryptography-migration-ccc4ec</guid>
            <pubDate>Fri, 31 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief The post-quantum conversation has focused heavily on which algorithms to adopt, but algorithm selection is the second problem, not the first. The...]]></description>
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# Why Crypto-Agility Matters for Post-Quantum Cryptography Migration

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/31/why-crypto-agility-matters-for-post-quantum-cryptography-migration/) on July 31, 2026.

Insider Brief The post-quantum conversation has focused heavily on which algorithms to adopt, but algorithm selection is the second problem, not the first. The real challenge lies in developing the system’s ability to adapt itself to the adoption of new algorithms – all within years and without a massive disruptive replacement project, without breaking dependent […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/31/why-crypto-agility-matters-for-post-quantum-cryptography-migration/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Designing tight frames for quantum computing]]></title>
            <link>https://quantumcomputinginfo.com/blog/designing-tight-frames-for-quantum-computing-a7f90a</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/designing-tight-frames-for-quantum-computing-a7f90a</guid>
            <pubDate>Fri, 31 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.27247v1 Announce Type: new Abstract: The aim of this thesis is to explore the implementation of a special kind of quantum measurements, so called har...]]></description>
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# Designing tight frames for quantum computing

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.27247) on July 31, 2026.

arXiv:2607.27247v1 Announce Type: new Abstract: The aim of this thesis is to explore the implementation of a special kind of quantum measurements, so called harmonic tight frames. To achieve this goal, representation theory is addressed, emphasizing its construction from irreducible representations and the relations they satisfy. These tools simplify the study due to the existence of symmetries, leading to the concept of group frames, defined as orbits under the unitary action of a group and characterized by their symmetry groups. Among the various groups, the simplest are the abelian ones, giving rise to harmonic frames, which are analyzed through the classification theorem of abelian groups and the characters of their irreducible representations. In the quantum mechanics context, the fra...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.27247)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Is the H Atom Surrounded by A Cloud of Virtual Quanta Due to the Lamb Shift?]]></title>
            <link>https://quantumcomputinginfo.com/blog/is-the-h-atom-surrounded-by-a-cloud-of-virtual-quanta-due-to-the-lamb-shift-76fbf2</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/is-the-h-atom-surrounded-by-a-cloud-of-virtual-quanta-due-to-the-lamb-shift-76fbf2</guid>
            <pubDate>Fri, 31 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.27257v1 Announce Type: new Abstract: \abstract{The Lamb shift, one of the most fundamental interactions in atomic physics, arises from the interactio...]]></description>
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# Is the H Atom Surrounded by A Cloud of Virtual Quanta Due to the Lamb Shift?

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.27257) on July 31, 2026.

arXiv:2607.27257v1 Announce Type: new Abstract: \abstract\{The Lamb shift, one of the most fundamental interactions in atomic physics, arises from the interaction of H atoms with the electromagnetic fluctuations of the quantum vacuum. The energy shift has been computed in a variety of ways. The energy shift, as Feynman and Power demonstrated, equals the change in the vacuum energy in the volume containing the H atoms due to the change in the index of refraction arising from the presence of the H atoms. By using this result and a group theoretical calculation of the contribution to the Lamb shift from each frequency of the vacuum fluctuations, we can obtain an expression for the size of the region of vacuum energy for each frequency \texorpdfstring\{$\omega$\}\{\{\omega\}\} around the H ato...

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To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.27257)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[LLM-Guided Initialization for Accelerated Hybrid Quantum-Classical Medical Image Classification]]></title>
            <link>https://quantumcomputinginfo.com/blog/llm-guided-initialization-for-accelerated-hybrid-quantum-classical-medical-image-classification-6e4bfa</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/llm-guided-initialization-for-accelerated-hybrid-quantum-classical-medical-image-classification-6e4bfa</guid>
            <pubDate>Fri, 31 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.27262v1 Announce Type: new Abstract: Variational quantum algorithms often encounter barren plateaus, where cost gradients decay rapidly with increasi...]]></description>
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# LLM-Guided Initialization for Accelerated Hybrid Quantum-Classical Medical Image Classification

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.27262) on July 31, 2026.

arXiv:2607.27262v1 Announce Type: new Abstract: Variational quantum algorithms often encounter barren plateaus, where cost gradients decay rapidly with increasing circuit depth, undermining the trainability of parameterized quantum circuits. This paper evaluates AdaInit (Adaptive Initialization), proposed by Zhuang and Cunningham, which uses large language models to propose initial parameters for quantum neural networks. We study a simplified single-query AdaInit variant paired with GPU-accelerated simulation in NVIDIA CUDA-Q and apply it to binary classification on the DMR-IR mammography dataset. AdaInit delivers 14.6 times higher gradient variance at initialization than random initialization (0.0095 vs. 0.0006), producing 160 times faster convergence (1.1s vs. 176 s) while maintaining th...

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To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.27262)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Quantum State Discrimination With Stabilizer Circuits]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-state-discrimination-with-stabilizer-circuits-2e289b</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-state-discrimination-with-stabilizer-circuits-2e289b</guid>
            <pubDate>Fri, 31 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.27339v1 Announce Type: new Abstract: The task of quantum state discrimination provides an operational characterization of distinguishability and play...]]></description>
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# Quantum State Discrimination With Stabilizer Circuits

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.27339) on July 31, 2026.

arXiv:2607.27339v1 Announce Type: new Abstract: The task of quantum state discrimination provides an operational characterization of distinguishability and plays a central role in quantum information science. Since the achievable success probability in quantum state discrimination depends both on the states being discriminated and on the allowed measurements, it is natural to study discrimination under physically motivated measurement constraints. Here, we investigate minimum-error quantum state discrimination under measurements implementable by both fixed and adaptive stabilizer circuits. Given arbitrary stabilizer-state ancillas, we show that fixed stabilizer circuits provide no additional discrimination power, whereas adaptive circuits do. Then, focusing on single-qubit systems, we deri...

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To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.27339)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Quantum vs Classical Erasure: Equal Bounds but Unequal Costs]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-vs-classical-erasure-equal-bounds-but-unequal-costs-18c77e</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-vs-classical-erasure-equal-bounds-but-unequal-costs-18c77e</guid>
            <pubDate>Fri, 31 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.27341v1 Announce Type: new Abstract: Irreversibility has a fundamental thermodynamic cost, erasing information inevitably generates heat. This connec...]]></description>
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# Quantum vs Classical Erasure: Equal Bounds but Unequal Costs

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.27341) on July 31, 2026.

arXiv:2607.27341v1 Announce Type: new Abstract: Irreversibility has a fundamental thermodynamic cost, erasing information inevitably generates heat. This connection is quantified by the Landauer bound, which gives the minimum dissipation needed to erase a single bit of information. While this bound applies in both classical and quantum settings, it is saturated only in idealised limits of infinite resources. Here, we provide a unified first principles description of finite-resource erasure in both classical and quantum systems. We begin by proving the communal folklore that in the idealised regime the erasure cost of a bit encoded in a quantum or classical system is the same. Despite this, we show that their practical implementation differs substantially: achieving comparable erasure quali...

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To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.27341)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Booz Allen Backs the Search for Quantum’s Next Breakout Company]]></title>
            <link>https://quantumcomputinginfo.com/blog/booz-allen-backs-the-search-for-quantums-next-breakout-company-acf06d</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/booz-allen-backs-the-search-for-quantums-next-breakout-company-acf06d</guid>
            <pubDate>Thu, 30 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief PRESS RELEASE — Quantum World Congress today announced that Booz Allen will return as Presenting Sponsor of the 2026 Quantum Startup Pitch Competi...]]></description>
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# Booz Allen Backs the Search for Quantum’s Next Breakout Company

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/30/booz-allen-backs-the-search-for-quantums-next-breakout-company/) on July 30, 2026.

Insider Brief PRESS RELEASE — Quantum World Congress today announced that Booz Allen will return as Presenting Sponsor of the 2026 Quantum Startup Pitch Competition, strengthening a collaboration focused on identifying, elevating, and accelerating the companies working to move quantum technologies from scientific possibility to real-world impact. The competition will take place during Quantum World Congress 2026, convening September 23–25 at The Hotel at […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/30/booz-allen-backs-the-search-for-quantums-next-breakout-company/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Cesium atoms and quantum dots generate indistinguishable photons for modular quantum networks]]></title>
            <link>https://quantumcomputinginfo.com/blog/cesium-atoms-and-quantum-dots-generate-indistinguishable-photons-for-modular-quantum-networks-a7b573</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/cesium-atoms-and-quantum-dots-generate-indistinguishable-photons-for-modular-quantum-networks-a7b573</guid>
            <pubDate>Thu, 30 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Large-scale quantum communication networks require both reliable quantum memories and coherent single-photon sources that can exchange quantum information effic...]]></description>
            <content:encoded><![CDATA[
# Cesium atoms and quantum dots generate indistinguishable photons for modular quantum networks

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-cesium-atoms-quantum-dots-generate.html) on July 30, 2026.

Large-scale quantum communication networks require both reliable quantum memories and coherent single-photon sources that can exchange quantum information efficiently. A coherent source of single photons with narrow linewidth, high brightness, spectral uniformity and compatibility with quantum memories is necessary. While a variety of single-photon sources, such as quantum dots (QDs) and atoms in warm vapor cells, have been developed in recent years, each has inherent limitations, making a scalable and functional quantum network challenging to achieve....

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-cesium-atoms-quantum-dots-generate.html)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Cleveland Clinic and IBM Researchers Create Quantum Machine Learning Framework to Predict Neoantigen Immune Response]]></title>
            <link>https://quantumcomputinginfo.com/blog/cleveland-clinic-and-ibm-researchers-create-quantum-machine-learning-framework-to-predict-neoantigen-immune-response-b490f5</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/cleveland-clinic-and-ibm-researchers-create-quantum-machine-learning-framework-to-predict-neoantigen-immune-response-b490f5</guid>
            <pubDate>Thu, 30 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief PRESS RELEASE — Cleveland Clinic and IBM researchers are using quantum computing to tackle one of the most challenging problems in immuno-oncology...]]></description>
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# Cleveland Clinic and IBM Researchers Create Quantum Machine Learning Framework to Predict Neoantigen Immune Response

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/30/cleveland-clinic-and-ibm-researchers-create-quantum-machine-learning-framework-to-predict-neoantigen-immune-response/) on July 30, 2026.

Insider Brief PRESS RELEASE — Cleveland Clinic and IBM researchers are using quantum computing to tackle one of the most challenging problems in immuno-oncology: predicting which tumor mutations will trigger an immune response. Their framework, Quantum Convolutional HLA Immunogenic Peptide Prediction (Q-CHIPP), combined predictions of antigen presentation and immunotherapy response into a unified framework. It outperformed classical computing methods by improving accuracy […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/30/cleveland-clinic-and-ibm-researchers-create-quantum-machine-learning-framework-to-predict-neoantigen-immune-response/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[IBM and Algorithmiq Develop Framework for Verifying Quantum Computations Beyond Classical Simulation]]></title>
            <link>https://quantumcomputinginfo.com/blog/ibm-and-algorithmiq-develop-framework-for-verifying-quantum-computations-beyond-classical-simulation-1c6119</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ibm-and-algorithmiq-develop-framework-for-verifying-quantum-computations-beyond-classical-simulation-1c6119</guid>
            <pubDate>Thu, 30 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Today, Algorithmiq and IBM (NYSE: IBM) announced a major milestone in the development of quantum computing: a joint demonstration...]]></description>
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# IBM and Algorithmiq Develop Framework for Verifying Quantum Computations Beyond Classical Simulation

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/30/ibm-algorithmiq-quantum-computation-verification-framework/) on July 30, 2026.

Insider Brief Press release – Today, Algorithmiq and IBM (NYSE: IBM) announced a major milestone in the development of quantum computing: a joint demonstration of quantum advantage with the simulation of a heterogeneous quantum material, achieved with a new framework that establishes trust in quantum computations when classical verification is unavailable. Eight months after this problem and results […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/30/ibm-algorithmiq-quantum-computation-verification-framework/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[IBM and Ecosystem Partners Demonstrate “Trusted Quantum Advantage” Beyond Classical Supercomputers]]></title>
            <link>https://quantumcomputinginfo.com/blog/ibm-and-ecosystem-partners-demonstrate-trusted-quantum-advantage-beyond-classical-supercomputers-644c0e</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ibm-and-ecosystem-partners-demonstrate-trusted-quantum-advantage-beyond-classical-supercomputers-644c0e</guid>
            <pubDate>Thu, 30 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[IBM and a coalition of research collaborators—including the University of Chicago, Qedma Quantum Computing, Algorithmiq, RIKEN, and BlueQubit—have announced thr...]]></description>
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# IBM and Ecosystem Partners Demonstrate “Trusted Quantum Advantage” Beyond Classical Supercomputers

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/ibm-and-ecosystem-partners-demonstrate-trusted-quantum-advantage-beyond-classical-supercomputers/) on July 30, 2026.

IBM and a coalition of research collaborators—including the University of Chicago, Qedma Quantum Computing, Algorithmiq, RIKEN, and BlueQubit—have announced three joint technical demonstrations of quantum advantage. Published alongside public circuit repositories on the Quantum Advantage Tracker, the studies report that IBM's cloud-accessible quantum hardware ran complex, utility-scale algorithms beyond the computational capacity of leading classical [...] The post IBM and Ecosystem Partners Demonstrate “Trusted Quantum Advantage” Beyond Classical Supercomputers appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/ibm-and-ecosystem-partners-demonstrate-trusted-quantum-advantage-beyond-classical-supercomputers/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[IBM and Qedma Demonstrate Error-Mitigated Quantum Simulation Beyond Classical Benchmarks]]></title>
            <link>https://quantumcomputinginfo.com/blog/ibm-and-qedma-demonstrate-error-mitigated-quantum-simulation-beyond-classical-benchmarks-9e6ff0</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ibm-and-qedma-demonstrate-error-mitigated-quantum-simulation-beyond-classical-benchmarks-9e6ff0</guid>
            <pubDate>Thu, 30 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Qedma Quantum Computing, a pioneer in quantum error reduction software and IBM (NYSE: IBM) today announced a breakthrough study de...]]></description>
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# IBM and Qedma Demonstrate Error-Mitigated Quantum Simulation Beyond Classical Benchmarks

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/30/ibm-qedma-error-mitigated-quantum-simulation-classical-benchmarks/) on July 30, 2026.

Insider Brief Press release – Qedma Quantum Computing, a pioneer in quantum error reduction software and IBM (NYSE: IBM) today announced a breakthrough study demonstrating how trusted, error-mitigated quantum computation is possible, and can be used to explore the physics of materials beyond the capabilities of state-of-the-art classical simulations, including those run on one of the […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/30/ibm-qedma-error-mitigated-quantum-simulation-classical-benchmarks/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[IEEE Study Demonstrates Full-Wave Simulation of Kerr Frequency Comb Generation]]></title>
            <link>https://quantumcomputinginfo.com/blog/ieee-study-demonstrates-full-wave-simulation-of-kerr-frequency-comb-generation-e0f572</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ieee-study-demonstrates-full-wave-simulation-of-kerr-frequency-comb-generation-e0f572</guid>
            <pubDate>Thu, 30 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief PRESS RELEASE — Kerr optical frequency combs are compact light sources used in many applications, including precision measurements to high-speed c...]]></description>
            <content:encoded><![CDATA[
# IEEE Study Demonstrates Full-Wave Simulation of Kerr Frequency Comb Generation

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/30/ieee-study-demonstrates-full-wave-simulation-of-kerr-frequency-comb-generation/) on July 30, 2026.

Insider Brief PRESS RELEASE — Kerr optical frequency combs are compact light sources used in many applications, including precision measurements to high-speed communications. However, accurately simulating how they operate remains challenging as device designs become more complex. In a recent study, researchers from the USA developed a simulation framework that directly solves Maxwell’s equations, reproducing […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/30/ieee-study-demonstrates-full-wave-simulation-of-kerr-frequency-comb-generation/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Light's hidden properties save quantum information from the chaos of bad weather]]></title>
            <link>https://quantumcomputinginfo.com/blog/lights-hidden-properties-save-quantum-information-from-the-chaos-of-bad-weather-decbe3</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/lights-hidden-properties-save-quantum-information-from-the-chaos-of-bad-weather-decbe3</guid>
            <pubDate>Thu, 30 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[For years, researchers have tried to harness the "twist" of light to transmit data. This property describes how light spirals as it travels forward, and because...]]></description>
            <content:encoded><![CDATA[
# Light''s hidden properties save quantum information from the chaos of bad weather

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-hidden-properties-quantum-chaos-bad.html) on July 30, 2026.

For years, researchers have tried to harness the "twist" of light to transmit data. This property describes how light spirals as it travels forward, and because it can be molded into a virtually infinite number of different twists, it provides a massive, promising alphabet for high-capacity communication.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-hidden-properties-quantum-chaos-bad.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[NIST’s Andrew Regenscheid Explains the Transition to Post-Quantum Cryptography]]></title>
            <link>https://quantumcomputinginfo.com/blog/nists-andrew-regenscheid-explains-the-transition-to-post-quantum-cryptography-4e8fa5</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/nists-andrew-regenscheid-explains-the-transition-to-post-quantum-cryptography-4e8fa5</guid>
            <pubDate>Thu, 30 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – From our bank accounts to smartphones, all our sensitive data and devices are protected with a technology known as cryptography. P...]]></description>
            <content:encoded><![CDATA[
# NIST’s Andrew Regenscheid Explains the Transition to Post-Quantum Cryptography

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/30/nist-andrew-regenscheid-post-quantum-cryptography-transition/) on July 30, 2026.

Insider Brief Press release – From our bank accounts to smartphones, all our sensitive data and devices are protected with a technology known as cryptography. Present-day cryptography essentially uses a very challenging set of math problems that are nearly impossible for current computers to solve. These math problems act as a “lock” to keep hackers […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/30/nist-andrew-regenscheid-post-quantum-cryptography-transition/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[NRL Expands Quantum Research Efforts Across Sensing, Computing and Networking]]></title>
            <link>https://quantumcomputinginfo.com/blog/nrl-expands-quantum-research-efforts-across-sensing-computing-and-networking-91db8c</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/nrl-expands-quantum-research-efforts-across-sensing-computing-and-networking-91db8c</guid>
            <pubDate>Thu, 30 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release — As a recent Executive Order declares, “the United States stands at the cusp of a quantum revolution.”At the U.S. Naval Research La...]]></description>
            <content:encoded><![CDATA[
# NRL Expands Quantum Research Efforts Across Sensing, Computing and Networking

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/30/us-naval-research-laboratory-quantum-technology-research/) on July 30, 2026.

Insider Brief Press release — As a recent Executive Order declares, “the United States stands at the cusp of a quantum revolution.”At the U.S. Naval Research Laboratory (NRL) that future is already taking shape as researchers advance the Navy’s quantum research enterprise through groundbreaking science, technology development and strategic partnerships. The order identifies quantum information […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/30/us-naval-research-laboratory-quantum-technology-research/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Physicists create Bose–Einstein condensate from ultracold polar molecules]]></title>
            <link>https://quantumcomputinginfo.com/blog/physicists-create-boseeinstein-condensate-from-ultracold-polar-molecules-9b0676</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/physicists-create-boseeinstein-condensate-from-ultracold-polar-molecules-9b0676</guid>
            <pubDate>Thu, 30 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Bose–Einstein condensates are states of matter that form when particles called bosons are cooled to temperatures that are only a fraction of a degree above abso...]]></description>
            <content:encoded><![CDATA[
# Physicists create Bose–Einstein condensate from ultracold polar molecules

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-physicists-boseeinstein-condensate-ultracold-polar.html) on July 30, 2026.

Bose–Einstein condensates are states of matter that form when particles called bosons are cooled to temperatures that are only a fraction of a degree above absolute zero (i.e., 0 Kelvin [-460°F]). In these states, particles occupy the same quantum state and exhibit interesting collective behaviors, essentially behaving as if they were a single "super-particle."

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-physicists-boseeinstein-condensate-ultracold-polar.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Physicists link the Riemann Hypothesis to phase transitions in quantum systems]]></title>
            <link>https://quantumcomputinginfo.com/blog/physicists-link-the-riemann-hypothesis-to-phase-transitions-in-quantum-systems-a52bb8</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/physicists-link-the-riemann-hypothesis-to-phase-transitions-in-quantum-systems-a52bb8</guid>
            <pubDate>Thu, 30 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[A new study in Nature Communications has established a link between the Riemann Hypothesis and dynamical phase transitions in engineered quantum systems, demons...]]></description>
            <content:encoded><![CDATA[
# Physicists link the Riemann Hypothesis to phase transitions in quantum systems

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-physicists-link-riemann-hypothesis-phase.html) on July 30, 2026.

A new study in Nature Communications has established a link between the Riemann Hypothesis and dynamical phase transitions in engineered quantum systems, demonstrating the effect on a quantum processor.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-physicists-link-riemann-hypothesis-phase.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Pusan National University Researchers Have Developed a Hybrid Quantum Network with Indistinguishable Quantum Sources]]></title>
            <link>https://quantumcomputinginfo.com/blog/pusan-national-university-researchers-have-developed-a-hybrid-quantum-network-with-indistinguishable-quantum-sources-82b163</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/pusan-national-university-researchers-have-developed-a-hybrid-quantum-network-with-indistinguishable-quantum-sources-82b163</guid>
            <pubDate>Thu, 30 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Large-scale quantum communication networks require both reliable quantum memories and coherent single-photon sources for efficient...]]></description>
            <content:encoded><![CDATA[
# Pusan National University Researchers Have Developed a Hybrid Quantum Network with Indistinguishable Quantum Sources

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/30/pusan-national-university-researchers-have-developed-a-hybrid-quantum-network-with-indistinguishable-quantum-sources/) on July 30, 2026.

Insider Brief Press release – Large-scale quantum communication networks require both reliable quantum memories and coherent single-photon sources for efficient quantum information exchange. While various single photon sources have been developed recently, each has inherent limitations, making a scalable and functional quantum network challenging to achieve. Hybrid quantum architectures that combine different quantum light sources […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/30/pusan-national-university-researchers-have-developed-a-hybrid-quantum-network-with-indistinguishable-quantum-sources/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum in the palm of your hand: The evolution of superconducting qubits]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-in-the-palm-of-your-hand-the-evolution-of-superconducting-qubits-c004e3</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-in-the-palm-of-your-hand-the-evolution-of-superconducting-qubits-c004e3</guid>
            <pubDate>Thu, 30 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Electrons zipping through transistors, powering the screens on our smartphones. Light zooming from distant stars to Earth, moving faster than anything else in t...]]></description>
            <content:encoded><![CDATA[
# Quantum in the palm of your hand: The evolution of superconducting qubits

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-quantum-palm-evolution-superconducting-qubits.html) on July 30, 2026.

Electrons zipping through transistors, powering the screens on our smartphones. Light zooming from distant stars to Earth, moving faster than anything else in the universe. Protons enabling MRI machines to analyze people's injuries.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-quantum-palm-evolution-superconducting-qubits.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum spin effects may enhance one-way electrical transport in chiral magnets]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-spin-effects-may-enhance-one-way-electrical-transport-in-chiral-magnets-2d49a2</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-spin-effects-may-enhance-one-way-electrical-transport-in-chiral-magnets-2d49a2</guid>
            <pubDate>Thu, 30 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum fluctuations influence direction-dependent electrical transport in chiral magnets, researchers from Science Tokyo report. In chiral magnetic systems, el...]]></description>
            <content:encoded><![CDATA[
# Quantum spin effects may enhance one-way electrical transport in chiral magnets

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-quantum-effects-electrical-chiral-magnets.html) on July 30, 2026.

Quantum fluctuations influence direction-dependent electrical transport in chiral magnets, researchers from Science Tokyo report. In chiral magnetic systems, electric current flows differently depending on its direction, but the role of quantum effects in this behavior has remained unclear. Through theoretical analysis, the researchers showed that chiral magnetic systems exhibit logarithmic temperature dependence at low temperatures, offering new insights into electron transport in magnetic materials. These findings are expected to play a crucial role in spintronics....

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-quantum-effects-electrical-chiral-magnets.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Vexlum Opens UK Laboratory and Appoints Dr. Stefan Truppe to Lead Local Operations]]></title>
            <link>https://quantumcomputinginfo.com/blog/vexlum-opens-uk-laboratory-and-appoints-dr-stefan-truppe-to-lead-local-operations-d00932</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/vexlum-opens-uk-laboratory-and-appoints-dr-stefan-truppe-to-lead-local-operations-d00932</guid>
            <pubDate>Thu, 30 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Vexlum, the global leader in high-power semiconductor Vertical-External-Cavity Surface-Emitting Laser (VECSEL) technology, has ann...]]></description>
            <content:encoded><![CDATA[
# Vexlum Opens UK Laboratory and Appoints Dr. Stefan Truppe to Lead Local Operations

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/30/vexlum-grows-its-european-presence-and-appoints-dr-stefan-truppe-as-managing-director-of-vexlum-uk/) on July 30, 2026.

Insider Brief Press release – Vexlum, the global leader in high-power semiconductor Vertical-External-Cavity Surface-Emitting Laser (VECSEL) technology, has announced the appointment of Dr. Stefan Truppe as Managing Director of Vexlum UK. The appointment coincides with the establishment of a dedicated Vexlum laboratory in London, positioning the company at the center of the UK’s rapidly growing quantum […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/30/vexlum-grows-its-european-presence-and-appoints-dr-stefan-truppe-as-managing-director-of-vexlum-uk/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Exact Finite-Dimensional Evaluation of Homodyne Quantum Trajectories for Single-Quadrature Hamiltonian]]></title>
            <link>https://quantumcomputinginfo.com/blog/exact-finite-dimensional-evaluation-of-homodyne-quantum-trajectories-for-single-quadrature-hamiltonian-8199d3</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/exact-finite-dimensional-evaluation-of-homodyne-quantum-trajectories-for-single-quadrature-hamiltonian-8199d3</guid>
            <pubDate>Thu, 30 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.26093v1 Announce Type: new Abstract: Simulation of nonlinear stochastic master equations generally requires trajectory-level evolution of large Hilbe...]]></description>
            <content:encoded><![CDATA[
# Exact Finite-Dimensional Evaluation of Homodyne Quantum Trajectories for Single-Quadrature Hamiltonian

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.26093) on July 30, 2026.

arXiv:2607.26093v1 Announce Type: new Abstract: Simulation of nonlinear stochastic master equations generally requires trajectory-level evolution of large Hilbert-space density matrices, making strongly nonlinear continuously monitored systems computationally challenging. Here we identify an exactly solvable class of continuously monitored systems consisting of polynomial single-quadrature Hamiltonians, linear damping, and homodyne measurement of the same quadrature. For Gaussian initial states, we derive an exact finite-dimensional stochastic representation of the conditional dynamics for arbitrary finite-order quadrature moments $\langle Q^mP^n\rangle$ through closure of the conditional momentum hierarchy. The resulting coefficient equations depend only on the Hamiltonian degree and mome...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.26093)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Malleability of transformations on the ciphertext in noisy Quantum public key encryption]]></title>
            <link>https://quantumcomputinginfo.com/blog/malleability-of-transformations-on-the-ciphertext-in-noisy-quantum-public-key-encryption-d82ed5</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/malleability-of-transformations-on-the-ciphertext-in-noisy-quantum-public-key-encryption-d82ed5</guid>
            <pubDate>Thu, 30 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.26086v1 Announce Type: new Abstract: We characterize a noisy variant of a Quantum public encryption protocol recently introduced by Malavolta and Wal...]]></description>
            <content:encoded><![CDATA[
# Malleability of transformations on the ciphertext in noisy Quantum public key encryption

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.26086) on July 30, 2026.

arXiv:2607.26086v1 Announce Type: new Abstract: We characterize a noisy variant of a Quantum public encryption protocol recently introduced by Malavolta and Walter which demonstrated that the notion of everlasting security can be rigorously formulated for Quantum key distribution after two rounds of interaction between Alice and Bob. To address one possible direction of research that is related to injecting noise in the cryptographic protocol related to Quantum key distribution we formulate arguments for further examining the notion of everlasting security through malleability assumptions on transformations of the ciphertext. Assumptions surrounding malleability were introduced by Maurer and Tackmann for the purposes of comparing how authenticate then encrypt, and encrypt then authenticate...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.26086)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Quantum Information Decoupling Beyond Finite Dimensions]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-information-decoupling-beyond-finite-dimensions-c30092</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-information-decoupling-beyond-finite-dimensions-c30092</guid>
            <pubDate>Thu, 30 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.26123v1 Announce Type: new Abstract: Quantum information decoupling is a pillar of quantum information theory, underlying quantum communication, erro...]]></description>
            <content:encoded><![CDATA[
# Quantum Information Decoupling Beyond Finite Dimensions

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.26123) on July 30, 2026.

arXiv:2607.26123v1 Announce Type: new Abstract: Quantum information decoupling is a pillar of quantum information theory, underlying quantum communication, error correction, and information recovery. However, its existing formulations rely on random unitary operations tied to finite-dimensional assumptions on quantum systems. Here we establish a decoupling framework for arbitrary separable, possibly infinite-dimensional systems. For finite-dimensional inputs and arbitrary separable reference/output systems, we derive error bounds on one-shot decoupling for completely positive maps in terms of sandwiched R\'enyi conditional entropies. For partial-trace decoupling with finite-dimensional references, the error exponent is optimal up to the known critical rate. To handle infinite-dimensional i...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.26123)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum mechanics on the line with two origins]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-mechanics-on-the-line-with-two-origins-a46f69</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-mechanics-on-the-line-with-two-origins-a46f69</guid>
            <pubDate>Thu, 30 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.26080v1 Announce Type: new Abstract: We study scalar and spinorial quantum dynamics on the standard line with two origins, \[ \Ltwo=(\R_1\sqcup\R_2)/...]]></description>
            <content:encoded><![CDATA[
# Quantum mechanics on the line with two origins

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.26080) on July 30, 2026.

arXiv:2607.26080v1 Announce Type: new Abstract: We study scalar and spinorial quantum dynamics on the standard line with two origins, \[ \Ltwo=(\R_1\sqcup\R_2)/\!\sim, \qquad (x,1)\sim(x,2)\quad\text\{for \}x\neq0, \] equipped with its identity-glued smooth structure and flat metric. We first show that the ordinary scalar theory is insensitive to the doubled origin: every continuous map from \(\Ltwo\) to a Hausdorff space factors through the quotient \(q:\Ltwo\to\R\), while, for the natural measure, \[ C^\infty(\Ltwo)\cong C^\infty(\R), \qquad L^2(\Ltwo)\cong L^2(\R). \] Accordingly, the natural scalar free Hamiltonian is unitarily equivalent to the free Laplacian on \(\R\). The doubled origin remains visible, however, in the spinor line associated with the nontrivial spin structure. The o...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.26080)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Qubit-qubit-qutrit quantum correlations in $H \to f \bar f V$]]></title>
            <link>https://quantumcomputinginfo.com/blog/qubit-qubit-qutrit-quantum-correlations-in-h-to-f-bar-f-v-bd9346</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/qubit-qubit-qutrit-quantum-correlations-in-h-to-f-bar-f-v-bd9346</guid>
            <pubDate>Thu, 30 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.26122v1 Announce Type: new Abstract: We perform an extensive analysis of the quantum correlations carried by the qubit-qubit-qutrit pure state arisin...]]></description>
            <content:encoded><![CDATA[
# Qubit-qubit-qutrit quantum correlations in $H \to f \bar f V$

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.26122) on July 30, 2026.

arXiv:2607.26122v1 Announce Type: new Abstract: We perform an extensive analysis of the quantum correlations carried by the qubit-qubit-qutrit pure state arising in the decay of a massive scalar into a fermion-antifermion pair and a massive gauge boson, $H \to f \bar f V$, specialising to the Higgs boson decay $h \to \tau^- \tau^+ Z$. Working with the exact tree-level spin state and its systematic expansion around the massless-fermion limit, we obtain analytic control over the entire phase space: the bipartite entanglement measures, the genuine $2 \otimes 2 \otimes 3$ entanglement structure (the Miyake classification), as well as the Bell-inequality violations and the non-stabiliserness (magic) are all mapped and reproduced by compact formulas. The bipartite measures exhibit a monogamy-lik...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.26122)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[2D quantum memory device reaches single-electron limit of information storage]]></title>
            <link>https://quantumcomputinginfo.com/blog/2d-quantum-memory-device-reaches-single-electron-limit-of-information-storage-a1503d</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/2d-quantum-memory-device-reaches-single-electron-limit-of-information-storage-a1503d</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Most electronic memory storage devices require the ability to trap large numbers of electrons for each bit of memory. In an ideal world, however, it would take...]]></description>
            <content:encoded><![CDATA[
# 2D quantum memory device reaches single-electron limit of information storage

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-2d-quantum-memory-device-electron.html) on July 29, 2026.

Most electronic memory storage devices require the ability to trap large numbers of electrons for each bit of memory. In an ideal world, however, it would take only one electron. This would reduce space requirements and power consumption for devices. Now, a team in China has realized this goal with an ultrathin device capable of minimizing the stray capacitance that plagued earlier attempts. The new study, published in Science, describes how this novel device has overcome challenges in implementing the single-electron design....

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-2d-quantum-memory-device-electron.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[AI Finds New Weaknesses in Cryptographic Algorithms, Anthropic Says]]></title>
            <link>https://quantumcomputinginfo.com/blog/ai-finds-new-weaknesses-in-cryptographic-algorithms-anthropic-says-3eb7ee</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ai-finds-new-weaknesses-in-cryptographic-algorithms-anthropic-says-3eb7ee</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Anthropic says one of its newest AI models discovered improved mathematical attacks against two important cryptographic algorithms, demonstrating...]]></description>
            <content:encoded><![CDATA[
# AI Finds New Weaknesses in Cryptographic Algorithms, Anthropic Says

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/29/ai-finds-new-weaknesses-in-cryptographic-algorithms-anthropic-says/) on July 29, 2026.

Insider Brief Anthropic says one of its newest AI models discovered improved mathematical attacks against two important cryptographic algorithms, demonstrating that frontier AI systems may soon become valuable tools for testing the security of the encryption methods that protect digital communications. The company said the findings do not threaten today’s deployed encryption systems. Instead, they […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/29/ai-finds-new-weaknesses-in-cryptographic-algorithms-anthropic-says/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[EY Announces On-Site Quantum Computing]]></title>
            <link>https://quantumcomputinginfo.com/blog/ey-announces-on-site-quantum-computing-0f6672</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ey-announces-on-site-quantum-computing-0f6672</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief PRESS RELEASE — The EY organization (EY) announces the expansion of its global quantum computing capabilities with the addition of an on-site quan...]]></description>
            <content:encoded><![CDATA[
# EY Announces On-Site Quantum Computing

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/29/ey-announces-on-site-quantum-computing/) on July 29, 2026.

Insider Brief PRESS RELEASE — The EY organization (EY) announces the expansion of its global quantum computing capabilities with the addition of an on-site quantum computer led by EY Canada and part of a global investment of more than US$3b in AI and other next frontier technologies. The new capabilities will support the processing of […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/29/ey-announces-on-site-quantum-computing/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Four Quantum Firms Join ABQ-Net to Validate Defense and Security Technologies]]></title>
            <link>https://quantumcomputinginfo.com/blog/four-quantum-firms-join-abq-net-to-validate-defense-and-security-technologies-eba58f</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/four-quantum-firms-join-abq-net-to-validate-defense-and-security-technologies-eba58f</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Four commercial quantum companies—Infleqtion, Aliro Technologies, Tensora, and Bandelier Technologies—have officially signed on to leverage ABQ-Net, the first o...]]></description>
            <content:encoded><![CDATA[
# Four Quantum Firms Join ABQ-Net to Validate Defense and Security Technologies

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/four-quantum-firms-join-abq-net-to-validate-defense-and-security-technologies/) on July 29, 2026.

Four commercial quantum companies—Infleqtion, Aliro Technologies, Tensora, and Bandelier Technologies—have officially signed on to leverage ABQ-Net, the first open-access, entanglement-based quantum network testbed in the United States. Built by Brooklyn-based quantum networking developer Qunnect in partnership with Roadrunner Venture Studios and supported by the New Mexico Technology and Innovation Office, ABQ-Net gives founders live metropolitan fiber testing [...] The post Four Quantum Firms Join ABQ-Net to Validate Defense and Security Technologies appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/four-quantum-firms-join-abq-net-to-validate-defense-and-security-technologies/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[GlobalFoundries Secures $300 Million CHIPS Award for Silicon Photonics Research]]></title>
            <link>https://quantumcomputinginfo.com/blog/globalfoundries-secures-300-million-chips-award-for-silicon-photonics-research-e7336a</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/globalfoundries-secures-300-million-chips-award-for-silicon-photonics-research-e7336a</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – GlobalFoundries (Nasdaq: GFS) today announced it has entered into a letter of intent (LOI) with the U.S. Department of Commerce to...]]></description>
            <content:encoded><![CDATA[
# GlobalFoundries Secures $300 Million CHIPS Award for Silicon Photonics Research

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/29/globalfoundries-300-million-chips-award-silicon-photonics/) on July 29, 2026.

Insider Brief Press release – GlobalFoundries (Nasdaq: GFS) today announced it has entered into a letter of intent (LOI) with the U.S. Department of Commerce to accelerate research and development of next-generation silicon photonics – the optical technology that moves data at the speed of light and underpins the AI and high-performance computing data centers […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/29/globalfoundries-300-million-chips-award-silicon-photonics/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Horizon Quantum and Quantum Machines Partner to Advance Real-Time Quantum Calibration]]></title>
            <link>https://quantumcomputinginfo.com/blog/horizon-quantum-and-quantum-machines-partner-to-advance-real-time-quantum-calibration-541e64</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/horizon-quantum-and-quantum-machines-partner-to-advance-real-time-quantum-calibration-541e64</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Software infrastructure developer Horizon Quantum Computing (Nasdaq: HQ) and hybrid quantum-classical control provider Quantum Machines (QM) have announced a st...]]></description>
            <content:encoded><![CDATA[
# Horizon Quantum and Quantum Machines Partner to Advance Real-Time Quantum Calibration

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/horizon-quantum-and-quantum-machines-partner-to-advance-real-time-quantum-calibration/) on July 29, 2026.

Software infrastructure developer Horizon Quantum Computing (Nasdaq: HQ) and hybrid quantum-classical control provider Quantum Machines (QM) have announced a strategic collaboration to develop embedded calibration technologies for quantum computing hardware. By integrating Quantum Machines’ control systems with Horizon’s software architecture, the partnership aims to create lightweight, real-time calibration routines that reduce system downtime and improve [...] The post Horizon Quantum and Quantum Machines Partner to Advance Real-Time Quantum Calibration appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/horizon-quantum-and-quantum-machines-partner-to-advance-real-time-quantum-calibration/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Horizon Quantum Partners With Quantum Machines to Improve Quantum Computer Operations]]></title>
            <link>https://quantumcomputinginfo.com/blog/horizon-quantum-partners-with-quantum-machines-to-improve-quantum-computer-operations-daf45e</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/horizon-quantum-partners-with-quantum-machines-to-improve-quantum-computer-operations-daf45e</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Horizon Quantum Computing Pte. Ltd., the wholly-owned subsidiary of Horizon Quantum Holdings Ltd. (Nasdaq: HQ) (“Horizon Quantum”)...]]></description>
            <content:encoded><![CDATA[
# Horizon Quantum Partners With Quantum Machines to Improve Quantum Computer Operations

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/29/horizon-quantum-quantum-machines-calibration-technology/) on July 29, 2026.

Insider Brief Press release – Horizon Quantum Computing Pte. Ltd., the wholly-owned subsidiary of Horizon Quantum Holdings Ltd. (Nasdaq: HQ) (“Horizon Quantum”), a pioneer of software infrastructure for quantum applications and Q.M Technologies Ltd. (“Quantum Machines” or QM”), a leading provider of advanced hybrid quantum-classical control solutions, today announced a strategic collaboration to support the […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/29/horizon-quantum-quantum-machines-calibration-technology/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[HRL Laboratories Demonstrates Self-Running Silicon QPU in Nature Benchmark]]></title>
            <link>https://quantumcomputinginfo.com/blog/hrl-laboratories-demonstrates-self-running-silicon-qpu-in-nature-benchmark-c04af4</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/hrl-laboratories-demonstrates-self-running-silicon-qpu-in-nature-benchmark-c04af4</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[In a study published today in Nature, hardware developer HRL Laboratories—jointly owned by Boeing and General Motors—demonstrated an 18-qubit silicon spin quant...]]></description>
            <content:encoded><![CDATA[
# HRL Laboratories Demonstrates Self-Running Silicon QPU in Nature Benchmark

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/hrl-laboratories-demonstrates-self-running-silicon-qpu-in-nature-benchmark/) on July 29, 2026.

In a study published today in Nature, hardware developer HRL Laboratories—jointly owned by Boeing and General Motors—demonstrated an 18-qubit silicon spin quantum processing unit (QPU) that operates autonomously without real-time direction from room-temperature electronics. The integrated architecture replaces traditional racks of external control instruments with a custom cryogenic CMOS control chip operating at 4 K [...] The post HRL Laboratories Demonstrates Self-Running Silicon QPU in Nature Benchmark appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/hrl-laboratories-demonstrates-self-running-silicon-qpu-in-nature-benchmark/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[HRL Shows Self-Operating Silicon Quantum Processor That Performs Error Correction]]></title>
            <link>https://quantumcomputinginfo.com/blog/hrl-shows-self-operating-silicon-quantum-processor-that-performs-error-correction-16e18d</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/hrl-shows-self-operating-silicon-quantum-processor-that-performs-error-correction-16e18d</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief PRESS RELEASE — HRL Laboratories published a quantum computing milestone in Nature today: a quantum processor that runs itself. Quantum computers...]]></description>
            <content:encoded><![CDATA[
# HRL Shows Self-Operating Silicon Quantum Processor That Performs Error Correction

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/29/hrl-shows-self-operating-silicon-quantum-processor-that-performs-error-correction/) on July 29, 2026.

Insider Brief PRESS RELEASE — HRL Laboratories published a quantum computing milestone in Nature today: a quantum processor that runs itself. Quantum computers normally depend on racks of external electronics to generate every control signal. HRL replaced those racks with a custom control chip that sits near the qubits, in the extreme cold. The combined […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/29/hrl-shows-self-operating-silicon-quantum-processor-that-performs-error-correction/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[IonQ Clears Final Regulatory Hurdle to Complete Acquisition of SkyWater Technology]]></title>
            <link>https://quantumcomputinginfo.com/blog/ionq-clears-final-regulatory-hurdle-to-complete-acquisition-of-skywater-technology-e3d607</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ionq-clears-final-regulatory-hurdle-to-complete-acquisition-of-skywater-technology-e3d607</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Trapped-ion quantum hardware developer IonQ (NYSE: IONQ) has secured final regulatory approval to finalize its acquisition of SkyWater Technology (NASDAQ: SKYT)...]]></description>
            <content:encoded><![CDATA[
# IonQ Clears Final Regulatory Hurdle to Complete Acquisition of SkyWater Technology

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/ionq-clears-final-regulatory-hurdle-to-complete-acquisition-of-skywater-technology/) on July 29, 2026.

Trapped-ion quantum hardware developer IonQ (NYSE: IONQ) has secured final regulatory approval to finalize its acquisition of SkyWater Technology (NASDAQ: SKYT), the largest exclusively U.S.-based semiconductor foundry. First announced as a definitive $1.8 billion cash-and-stock transaction in January 2026, the deal is set to close on July 31, 2026. Following transaction completion, SkyWater will operate [...] The post IonQ Clears Final Regulatory Hurdle to Complete Acquisition of SkyWater Technology appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/ionq-clears-final-regulatory-hurdle-to-complete-acquisition-of-skywater-technology/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[IQM Quantum Computers Registers 183,619 New Shares Following ESOP 1 Subscriptions]]></title>
            <link>https://quantumcomputinginfo.com/blog/iqm-quantum-computers-registers-183619-new-shares-following-esop-1-subscriptions-aa86e0</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/iqm-quantum-computers-registers-183619-new-shares-following-esop-1-subscriptions-aa86e0</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – IQM Quantum Computers Plc, Stock Exchange Release, Total number of voting rights and shares, 29 July, 2026 at 10:00 EEST/EET. A to...]]></description>
            <content:encoded><![CDATA[
# IQM Quantum Computers Registers 183,619 New Shares Following ESOP 1 Subscriptions

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/29/iqm-registers-new-shares-from-esop-1/) on July 29, 2026.

Insider Brief Press release – IQM Quantum Computers Plc, Stock Exchange Release, Total number of voting rights and shares, 29 July, 2026 at 10:00 EEST/EET. A total of 183,619 new shares have been subscribed for under IQM Quantum Computers Plc’s (“IQM” or the “Company”) ESOP 1 employee stock option plan during the period from 10 […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/29/iqm-registers-new-shares-from-esop-1/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Israel Pushes For National Quantum R&D Center to Unite Industry]]></title>
            <link>https://quantumcomputinginfo.com/blog/israel-pushes-for-national-quantum-rd-center-to-unite-industry-fa26b0</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/israel-pushes-for-national-quantum-rd-center-to-unite-industry-fa26b0</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Specialize, collaborate and compete may be the Israeli national deep tech mantra guiding the nation as it moves to establish a national quantum co...]]></description>
            <content:encoded><![CDATA[
# Israel Pushes For National Quantum R&D Center to Unite Industry

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/29/israel-pushes-for-national-quantum-rd-center-to-unite-industry/) on July 29, 2026.

Insider Brief Specialize, collaborate and compete may be the Israeli national deep tech mantra guiding the nation as it moves to establish a national quantum computing research and development center, according to an interview with Israel Innovation Authority CEO Dror Bin published by the Jerusalem Post and conducted by The Media Line. The center will […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/29/israel-pushes-for-national-quantum-rd-center-to-unite-industry/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[QED-C and Center for Quantum Networks Release Quantum Networking Roadmap]]></title>
            <link>https://quantumcomputinginfo.com/blog/qed-c-and-center-for-quantum-networks-release-quantum-networking-roadmap-188356</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/qed-c-and-center-for-quantum-networks-release-quantum-networking-roadmap-188356</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Schematic of the future quantum internet. Credit: Alireza Shabani, © 2026. The Quantum Economic Development Consortium (QED-C), in collaboration with the NSF-fu...]]></description>
            <content:encoded><![CDATA[
# QED-C and Center for Quantum Networks Release Quantum Networking Roadmap

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/qed-c-and-center-for-quantum-networks-release-quantum-networking-roadmap/) on July 29, 2026.

Schematic of the future quantum internet. Credit: Alireza Shabani, © 2026. The Quantum Economic Development Consortium (QED-C), in collaboration with the NSF-funded Center for Quantum Networks (CQN), has published its comprehensive Quantum Networking Applications Roadmap. Built on technical input from over 50 experts across national laboratories, academic research centers, and commercial firms—including IonQ, L3Harris, Aliro [...] The post QED-C and Center for Quantum Networks Release Quantum Networking Roadmap appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/qed-c-and-center-for-quantum-networks-release-quantum-networking-roadmap/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[QED-C Roadmap Outlines Technology Requirements for Future Quantum Networks]]></title>
            <link>https://quantumcomputinginfo.com/blog/qed-c-roadmap-outlines-technology-requirements-for-future-quantum-networks-4f9b9f</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/qed-c-roadmap-outlines-technology-requirements-for-future-quantum-networks-4f9b9f</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – The Quantum Economic Development Consortium (QED-C) today released a new Quantum Networking Applications Roadmap, identifying the...]]></description>
            <content:encoded><![CDATA[
# QED-C Roadmap Outlines Technology Requirements for Future Quantum Networks

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/29/qed-c-roadmap-future-quantum-networks/) on July 29, 2026.

Insider Brief Press release – The Quantum Economic Development Consortium (QED-C) today released a new Quantum Networking Applications Roadmap, identifying the technologies and performance improvements needed to enable quantum networks for commercially valuable applications in secure communications, networked computing, and distributed sensing. As quantum computing, sensing, and security technologies mature, their capabilities and value will also depend on whether quantum information can be shared reliably […]...

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/29/qed-c-roadmap-future-quantum-networks/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Rare-earth ions could enable telecom-ready control of interacting qubits]]></title>
            <link>https://quantumcomputinginfo.com/blog/rare-earth-ions-could-enable-telecom-ready-control-of-interacting-qubits-d13d16</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/rare-earth-ions-could-enable-telecom-ready-control-of-interacting-qubits-d13d16</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum technologies are devices and systems that exploit the laws of quantum mechanics and could perform tasks that are difficult or impossible to tackle using...]]></description>
            <content:encoded><![CDATA[
# Rare-earth ions could enable telecom-ready control of interacting qubits

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-rare-earth-ions-enable-telecom.html) on July 29, 2026.

Quantum technologies are devices and systems that exploit the laws of quantum mechanics and could perform tasks that are difficult or impossible to tackle using their classical counterparts. These technologies process and store information using qubits (i.e., quantum bits), which can exist in a superposition of multiple states simultaneously.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-rare-earth-ions-enable-telecom.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Riverlane and Unitary Foundation Launch Deltakit Community Fund for Open-Source QEC]]></title>
            <link>https://quantumcomputinginfo.com/blog/riverlane-and-unitary-foundation-launch-deltakit-community-fund-for-open-source-qec-1c2e39</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/riverlane-and-unitary-foundation-launch-deltakit-community-fund-for-open-source-qec-1c2e39</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum error correction (QEC) developer Riverlane and non-profit research organization Unitary Foundation have launched the Deltakit Community Fund, a quarterl...]]></description>
            <content:encoded><![CDATA[
# Riverlane and Unitary Foundation Launch Deltakit Community Fund for Open-Source QEC

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/riverlane-and-unitary-foundation-launch-deltakit-community-fund-for-open-source-qec/) on July 29, 2026.

Quantum error correction (QEC) developer Riverlane and non-profit research organization Unitary Foundation have launched the Deltakit Community Fund, a quarterly microgrant initiative designed to accelerate open-source QEC software development. Building on the momentum of June’s unitaryHACK26 hackathon, the rolling fund provides global software contributors with milestone awards ranging from $2,000 to $4,000 for building production-grade [...] The post Riverlane and Unitary Foundation Launch Deltakit Community Fund for Open-Source QEC appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/riverlane-and-unitary-foundation-launch-deltakit-community-fund-for-open-source-qec/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Scientists Say New Chip Architecture Could Tackle a Barrier to Scaling Quantum Computers Towards 1 Million Qubits]]></title>
            <link>https://quantumcomputinginfo.com/blog/scientists-say-new-chip-architecture-could-tackle-a-barrier-to-scaling-quantum-computers-towards-1-million-qubits-d19d25</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/scientists-say-new-chip-architecture-could-tackle-a-barrier-to-scaling-quantum-computers-towards-1-million-qubits-d19d25</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief PRESS RELEASE — A new concept from Warwick researchers could help solve one of the biggest challenges to building large-scale quantum computers: e...]]></description>
            <content:encoded><![CDATA[
# Scientists Say New Chip Architecture Could Tackle a Barrier to Scaling Quantum Computers Towards 1 Million Qubits

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/29/scientists-say-new-chip-architecture-could-tackle-a-barrier-to-scaling-quantum-computers-towards-1-million-qubits/) on July 29, 2026.

Insider Brief PRESS RELEASE — A new concept from Warwick researchers could help solve one of the biggest challenges to building large-scale quantum computers: enabling communication between vast numbers of quantum bits (qubits) over long distances across a single chip. Published in APL Quantum, the team of researchers from The University of Warwick and NRC […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/29/scientists-say-new-chip-architecture-could-tackle-a-barrier-to-scaling-quantum-computers-towards-1-million-qubits/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[The Growing Quantum Security Challenge Facing Bitcoin and Digital Assets]]></title>
            <link>https://quantumcomputinginfo.com/blog/the-growing-quantum-security-challenge-facing-bitcoin-and-digital-assets-e7867c</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/the-growing-quantum-security-challenge-facing-bitcoin-and-digital-assets-e7867c</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Quantum computers and encryption debates normally revolve around governmental communications, banking systems, or healthcare data. The role of cry...]]></description>
            <content:encoded><![CDATA[
# The Growing Quantum Security Challenge Facing Bitcoin and Digital Assets

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/29/growing-quantum-security-challenge-bitcoin-digital-assets/) on July 29, 2026.

Insider Brief Quantum computers and encryption debates normally revolve around governmental communications, banking systems, or healthcare data. The role of cryptocurrencies remains underexamined; however, a Google Quantum AI paper released in March 2026 hints at potential problems associated with this issue. Google Quantum AI’s whitepaper on this topic was written in collaboration with scientists from […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/29/growing-quantum-security-challenge-bitcoin-digital-assets/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[ZuriQ Secures $25.5M Seed Round and Advances 2D Trapped-Ion Fabrication with Infineon]]></title>
            <link>https://quantumcomputinginfo.com/blog/zuriq-secures-255m-seed-round-and-advances-2d-trapped-ion-fabrication-with-infineon-85b08c</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/zuriq-secures-255m-seed-round-and-advances-2d-trapped-ion-fabrication-with-infineon-85b08c</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Swiss quantum hardware startup ZuriQ has raised $25.5 million (€22.4M) in seed funding to scale its 2D trapped-ion quantum computing architecture. Spun out of E...]]></description>
            <content:encoded><![CDATA[
# ZuriQ Secures $25.5M Seed Round and Advances 2D Trapped-Ion Fabrication with Infineon

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/zuriq-secures-25-5m-seed-round-and-advances-2d-trapped-ion-fabrication-with-infineon/) on July 29, 2026.

Swiss quantum hardware startup ZuriQ has raised $25.5 million (€22.4M) in seed funding to scale its 2D trapped-ion quantum computing architecture. Spun out of ETH Zürich in 2024 by Dr. Pavel Hrmo, Dr. Tobias Sägesser, and Dr. Shreyans Jain, the company builds on a $4.2 million pre-seed round raised in 2025. The funding round was [...] The post ZuriQ Secures $25.5M Seed Round and Advances 2D Trapped-Ion Fabrication with Infineon appeared first on Quantum Computing Report.

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/zuriq-secures-25-5m-seed-round-and-advances-2d-trapped-ion-fabrication-with-infineon/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[A Difference Operator Approach to Quantum Random Walks: Parseval Identity, Krawtchouk Matrices, and Hermite Limits]]></title>
            <link>https://quantumcomputinginfo.com/blog/a-difference-operator-approach-to-quantum-random-walks-parseval-identity-krawtchouk-matrices-and-hermite-limits-758d20</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/a-difference-operator-approach-to-quantum-random-walks-parseval-identity-krawtchouk-matrices-and-hermite-limits-758d20</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.24837v1 Announce Type: new Abstract: We introduce a discrete difference operator D_k to study the one-dimensional quantum random walk (QRW) with the...]]></description>
            <content:encoded><![CDATA[
# A Difference Operator Approach to Quantum Random Walks: Parseval Identity, Krawtchouk Matrices, and Hermite Limits

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.24837) on July 29, 2026.

arXiv:2607.24837v1 Announce Type: new Abstract: We introduce a discrete difference operator D_k to study the one-dimensional quantum random walk (QRW) with the Hadamard coin. Explicit combinatorial expressions are obtained for the probability amplitudes a(n,k) and b(n,k), which encode the final step direction and carry alternating signs that reflect the merging of leftward steps. Removing these signs and the coin-state distinction recovers the classical binomial distribution. The symmetric and antisymmetric combinations $a\pm b$ are shown to coincide with diagonal and sub-diagonal entries of the Krawtchouk matrix. Using cross identities among Krawtchouk matrix elements, we prove by induction that the amplitudes satisfy a Parseval identity sum (a^2+b^2)=2^n-1, establishing probability conse...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.24837)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Can a quantum circuit detect the Unruh effect?]]></title>
            <link>https://quantumcomputinginfo.com/blog/can-a-quantum-circuit-detect-the-unruh-effect-a8a6fe</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/can-a-quantum-circuit-detect-the-unruh-effect-a8a6fe</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.24836v1 Announce Type: new Abstract: The Unruh effect predicts that an accelerating observer perceives the Minkowski vacuum as a thermal bath, yet di...]]></description>
            <content:encoded><![CDATA[
# Can a quantum circuit detect the Unruh effect?

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.24836) on July 29, 2026.

arXiv:2607.24836v1 Announce Type: new Abstract: The Unruh effect predicts that an accelerating observer perceives the Minkowski vacuum as a thermal bath, yet direct detection remains experimentally inaccessible. Its timelike counterpart, arising from the entanglement of massless fields between the future and past light cones, offers a more feasible route but requires a detector whose transition frequency follows a specific conformal-time scaling. We propose and analyze a practical implementation of such a detector using superconducting fluxonium circuits, which naturally provide two quasi-degenerate ground states and a tunable excited state, forming an effective $\Lambda$-system. By modulating the excited-state transition frequency in Minkowski time, the detector accumulates a geometric ph...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.24836)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Closed-Form Expectation Values of the Damped Kerr Oscillator]]></title>
            <link>https://quantumcomputinginfo.com/blog/closed-form-expectation-values-of-the-damped-kerr-oscillator-7869f7</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/closed-form-expectation-values-of-the-damped-kerr-oscillator-7869f7</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.24842v1 Announce Type: new Abstract: We derive a closed-form analytical expression for the expectation values of a damped Kerr nonlinear oscillator i...]]></description>
            <content:encoded><![CDATA[
# Closed-Form Expectation Values of the Damped Kerr Oscillator

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.24842) on July 29, 2026.

arXiv:2607.24842v1 Announce Type: new Abstract: We derive a closed-form analytical expression for the expectation values of a damped Kerr nonlinear oscillator initialized in a coherent state. Starting from the exact Liouville-space solution of the Lindblad master equation, we specialize to coherent-state initial conditions, obtaining explicit time-dependent expressions for arbitrary normally ordered expectation values. The resulting expressions depend only on the system parameters and the initial coherent-state amplitude, requiring neither numerical integration nor evolution in a truncated Fock space. We verify the analytical expressions against master-equation simulations over a range of nonlinear interaction strengths. The closed-form solution provides an efficient alternative to numeric...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.24842)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Unitary designs from perturbed time evolutions of a chaotic Hamiltonian]]></title>
            <link>https://quantumcomputinginfo.com/blog/unitary-designs-from-perturbed-time-evolutions-of-a-chaotic-hamiltonian-217b39</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/unitary-designs-from-perturbed-time-evolutions-of-a-chaotic-hamiltonian-217b39</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.24851v1 Announce Type: new Abstract: Unitary designs provide efficient substitutes for Haar-random unitaries in quantum information processing, rando...]]></description>
            <content:encoded><![CDATA[
# Unitary designs from perturbed time evolutions of a chaotic Hamiltonian

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.24851) on July 29, 2026.

arXiv:2607.24851v1 Announce Type: new Abstract: Unitary designs provide efficient substitutes for Haar-random unitaries in quantum information processing, randomized measurements, and many-body quantum dynamics. We propose a protocol based on time evolutions of a single chaotic Hamiltonian with intermediate unitary perturbations to generate unitary designs. We derive the frame potential of the resulting ensemble which relies on the frame potentials of the intermediate ensemble. The intermediate ensemble need not itself be Haar random or a unitary design even approximately; it is sufficient that its frame-potential growth remains well suppressed relative to the maximal possible scaling. The nontrivial Pauli set and the Clifford ensemble are simple examples satisfying this criterion, while f...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.24851)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Wave-functional formulation of dissipative CSL models]]></title>
            <link>https://quantumcomputinginfo.com/blog/wave-functional-formulation-of-dissipative-csl-models-8f524a</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/wave-functional-formulation-of-dissipative-csl-models-8f524a</guid>
            <pubDate>Wed, 29 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.24853v1 Announce Type: new Abstract: We formulate minimal and dissipative Continuous Spontaneous Localization (CSL) dynamics in the functional Schr\"...]]></description>
            <content:encoded><![CDATA[
# Wave-functional formulation of dissipative CSL models

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.24853) on July 29, 2026.

arXiv:2607.24853v1 Announce Type: new Abstract: We formulate minimal and dissipative Continuous Spontaneous Localization (CSL) dynamics in the functional Schr\"odinger representation for a non-relativistic bosonic field. In this framework, the Fock-space state is encoded in a wave functional, and fixed particle-number wave functions are obtained by sector projection. For the minimal CSL coupling to the smeared mass density, this projection gives the standard nonlinear stochastic dynamics in each \(N\)-particle sector, with the collapse operator acting on the total smeared density of the configuration. This makes the amplification mechanism transparent and allows us to discuss sector superpositions, local probability balance, and the status of Bohmian equivariance at the wave-function level...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.24853)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[5 ways AI Mode in Search helps you enjoy the real world]]></title>
            <link>https://quantumcomputinginfo.com/blog/5-ways-ai-mode-in-search-helps-you-enjoy-the-real-world-dc323d</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/5-ways-ai-mode-in-search-helps-you-enjoy-the-real-world-dc323d</guid>
            <pubDate>Tue, 28 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[It might sound counterintuitive, but Search's AI tools can actually help you make the most of your time offline whether you want to book concert tickets or find...]]></description>
            <content:encoded><![CDATA[
# 5 ways AI Mode in Search helps you enjoy the real world

> **Source:** Originally published on [Google AI Blog](https://blog.google/products-and-platforms/products/search/ai-mode-real-world-tips/) on July 28, 2026.

It might sound counterintuitive, but Search's AI tools can actually help you make the most of your time offline whether you want to book concert tickets or find the perf…

---

To read the full article, visit the original source page:

[Read the full article on Google AI Blog →](https://blog.google/products-and-platforms/products/search/ai-mode-real-world-tips/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[5 ways to host the ultimate dinner party with Google Search]]></title>
            <link>https://quantumcomputinginfo.com/blog/5-ways-to-host-the-ultimate-dinner-party-with-google-search-41e016</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/5-ways-to-host-the-ultimate-dinner-party-with-google-search-41e016</guid>
            <pubDate>Tue, 28 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[These AI features can help you craft a menu, design a tablescape, and handle other party-planning tasks....]]></description>
            <content:encoded><![CDATA[
# 5 ways to host the ultimate dinner party with Google Search

> **Source:** Originally published on [Google AI Blog](https://blog.google/products-and-platforms/products/search/dinner-party-hosting-tips/) on July 28, 2026.

These AI features can help you craft a menu, design a tablescape, and handle other party-planning tasks.

---

To read the full article, visit the original source page:

[Read the full article on Google AI Blog →](https://blog.google/products-and-platforms/products/search/dinner-party-hosting-tips/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[A way to read quantum bits faster and with less hardware]]></title>
            <link>https://quantumcomputinginfo.com/blog/a-way-to-read-quantum-bits-faster-and-with-less-hardware-044f42</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/a-way-to-read-quantum-bits-faster-and-with-less-hardware-044f42</guid>
            <pubDate>Tue, 28 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum computers process information in a fundamentally different way from conventional computers, using quantum bits, or qubits, that can exist in multiple st...]]></description>
            <content:encoded><![CDATA[
# A way to read quantum bits faster and with less hardware

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-quantum-bits-faster-hardware.html) on July 28, 2026.

Quantum computers process information in a fundamentally different way from conventional computers, using quantum bits, or qubits, that can exist in multiple states at once. This could allow them to tackle problems beyond the reach of today's machines, from simulating new materials to optimizing complex systems.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-quantum-bits-faster-hardware.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[EigenQ Appoints Mark Pecen as Vice Chairman and Alexander Truskovsky as CISO]]></title>
            <link>https://quantumcomputinginfo.com/blog/eigenq-appoints-mark-pecen-as-vice-chairman-and-alexander-truskovsky-as-ciso-62f6c0</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/eigenq-appoints-mark-pecen-as-vice-chairman-and-alexander-truskovsky-as-ciso-62f6c0</guid>
            <pubDate>Tue, 28 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – EigenQ, Inc. (“EigenQ” or the “Company”), a quantum technology company developing hardware and software solutions spanning post-qu...]]></description>
            <content:encoded><![CDATA[
# EigenQ Appoints Mark Pecen as Vice Chairman and Alexander Truskovsky as CISO

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/28/eigenq-appoints-mark-pecen-alexander-truskovsky-ciso/) on July 28, 2026.

Insider Brief Press release – EigenQ, Inc. (“EigenQ” or the “Company”), a quantum technology company developing hardware and software solutions spanning post-quantum cryptography, quantum random number generation, and hardware-rooted quantum-safe infrastructure, today announced the appointment of Mark Pecen as Vice Chairman and the promotion of Alexander Truskovsky to Chief Information Security Officer (CISO). The appointments […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/28/eigenq-appoints-mark-pecen-alexander-truskovsky-ciso/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Gemini API Managed Agents: 3.6 Flash, hooks, and more]]></title>
            <link>https://quantumcomputinginfo.com/blog/gemini-api-managed-agents-36-flash-hooks-and-more-555600</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/gemini-api-managed-agents-36-flash-hooks-and-more-555600</guid>
            <pubDate>Tue, 28 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[We’re announcing even more new capabilities in Managed Agents in Gemini API so developers can build reliable, production-ready agents....]]></description>
            <content:encoded><![CDATA[
# Gemini API Managed Agents: 3.6 Flash, hooks, and more

> **Source:** Originally published on [Google AI Blog](https://blog.google/innovation-and-ai/technology/developers-tools/expanding-managed-agents-gemini-api-3-6-flash-hooks/) on July 28, 2026.

We’re announcing even more new capabilities in Managed Agents in Gemini API so developers can build reliable, production-ready agents.

---

To read the full article, visit the original source page:

[Read the full article on Google AI Blog →](https://blog.google/innovation-and-ai/technology/developers-tools/expanding-managed-agents-gemini-api-3-6-flash-hooks/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Guest Post — Beyond Silicon: How AI Is Accelerating the Next Era of Computing]]></title>
            <link>https://quantumcomputinginfo.com/blog/guest-post-beyond-silicon-how-ai-is-accelerating-the-next-era-of-computing-4d2196</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/guest-post-beyond-silicon-how-ai-is-accelerating-the-next-era-of-computing-4d2196</guid>
            <pubDate>Tue, 28 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Guest Post By Ian Foley The biggest story in AI may not be AI at all. It may be the growing realization that silicon is running out of road. The remarkable prog...]]></description>
            <content:encoded><![CDATA[
# Guest Post — Beyond Silicon: How AI Is Accelerating the Next Era of Computing

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/28/guest-post-beyond-silicon-how-ai-is-accelerating-the-next-era-of-computing/) on July 28, 2026.

Guest Post By Ian Foley The biggest story in AI may not be AI at all. It may be the growing realization that silicon is running out of road. The remarkable progress of AI over the past few years has relied largely on brute force, demanding ever more silicon, electricity and infrastructure to keep the […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/28/guest-post-beyond-silicon-how-ai-is-accelerating-the-next-era-of-computing/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Infleqtion Names Dr. Joseph Buck Senior Vice President of Quantum Computing Systems]]></title>
            <link>https://quantumcomputinginfo.com/blog/infleqtion-names-dr-joseph-buck-senior-vice-president-of-quantum-computing-systems-bb02c4</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/infleqtion-names-dr-joseph-buck-senior-vice-president-of-quantum-computing-systems-bb02c4</guid>
            <pubDate>Tue, 28 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Infleqtion (NYSE: INFQ), a quantum computing and quantum sensing company powered by neutral-atom technology, today announced the a...]]></description>
            <content:encoded><![CDATA[
# Infleqtion Names Dr. Joseph Buck Senior Vice President of Quantum Computing Systems

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/28/infleqtion-appoints-dr-joseph-buck-as-senior-vice-president-of-quantum-computing-systems/) on July 28, 2026.

Insider Brief Press release – Infleqtion (NYSE: INFQ), a quantum computing and quantum sensing company powered by neutral-atom technology, today announced the appointment of Dr. Joseph Buck as senior vice president of quantum computing systems. Dr. Buck joined the company July 27, 2026, and will lead development of Sqale, Infleqtion‘s scalable neutral-atom quantum computer. Dr. […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/28/infleqtion-appoints-dr-joseph-buck-as-senior-vice-president-of-quantum-computing-systems/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[IonQ Receives Regulatory Approval to Complete Acquisition of SkyWater Technology]]></title>
            <link>https://quantumcomputinginfo.com/blog/ionq-receives-regulatory-approval-to-complete-acquisition-of-skywater-technology-b6a615</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ionq-receives-regulatory-approval-to-complete-acquisition-of-skywater-technology-b6a615</guid>
            <pubDate>Tue, 28 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief PRESS RELEASE — IonQ (NYSE: IONQ), the world’s leading quantum platform company, today received final regulatory approval to complete its acquisit...]]></description>
            <content:encoded><![CDATA[
# IonQ Receives Regulatory Approval to Complete Acquisition of SkyWater Technology

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/28/ionq-receives-regulatory-approval-to-complete-acquisition-of-skywater-technology/) on July 28, 2026.

Insider Brief PRESS RELEASE — IonQ (NYSE: IONQ), the world’s leading quantum platform company, today received final regulatory approval to complete its acquisition of SkyWater Technology (NASDAQ: SKYT), the largest exclusively U.S.-based semiconductor foundry. As noted when the companies announced their definitive agreement in January 2026, this transaction is expected to enable IonQ to materially […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/28/ionq-receives-regulatory-approval-to-complete-acquisition-of-skywater-technology/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[New research shows how 'hot electrons' can reshape metals in billionths of a second]]></title>
            <link>https://quantumcomputinginfo.com/blog/new-research-shows-how-hot-electrons-can-reshape-metals-in-billionths-of-a-second-f23e05</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/new-research-shows-how-hot-electrons-can-reshape-metals-in-billionths-of-a-second-f23e05</guid>
            <pubDate>Tue, 28 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Researchers at The University of Manchester have revealed how intense electronic excitation can trigger rapid structural changes in metals—without heating the a...]]></description>
            <content:encoded><![CDATA[
# New research shows how 'hot electrons' can reshape metals in billionths of a second

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-hot-electrons-reshape-metals-billionths.html) on July 28, 2026.

Researchers at The University of Manchester have revealed how intense electronic excitation can trigger rapid structural changes in metals—without heating the atomic lattice—offering new insight into ultrafast materials behavior.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-hot-electrons-reshape-metals-billionths.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[NordForsk Joins G7 Initiative to Fund International Quantum Technology Research Projects]]></title>
            <link>https://quantumcomputinginfo.com/blog/nordforsk-joins-g7-initiative-to-fund-international-quantum-technology-research-projects-5229db</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/nordforsk-joins-g7-initiative-to-fund-international-quantum-technology-research-projects-5229db</guid>
            <pubDate>Tue, 28 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief NordForsk has joined a new international research initiative with G7 funding agencies to support collaborative quantum technology research, commit...]]></description>
            <content:encoded><![CDATA[
# NordForsk Joins G7 Initiative to Fund International Quantum Technology Research Projects

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/28/nordforsk-joins-g7-initiative-to-fund-international-quantum-technology-research-projects/) on July 28, 2026.

Insider Brief NordForsk has joined a new international research initiative with G7 funding agencies to support collaborative quantum technology research, committing funding for Nordic participation in up to 12 international projects spanning quantum computing, communications, sensing, materials and post-quantum cryptography. The call for proposals, announced July 27, is being coordinated by the Natural Sciences and […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/28/nordforsk-joins-g7-initiative-to-fund-international-quantum-technology-research-projects/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantinuum to Report Second Quarter 2026 Financial Results on August 11]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantinuum-to-report-second-quarter-2026-financial-results-on-august-11-fa27eb</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantinuum-to-report-second-quarter-2026-financial-results-on-august-11-fa27eb</guid>
            <pubDate>Tue, 28 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Quantinuum Inc. (Nasdaq: QNT) (“Quantinuum“) today announced it will release its financial results for the second quarter (ending...]]></description>
            <content:encoded><![CDATA[
# Quantinuum to Report Second Quarter 2026 Financial Results on August 11

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/28/quantinuum-to-report-second-quarter-financial-results-on-august-11-2026/) on July 28, 2026.

Insider Brief Press release – Quantinuum Inc. (Nasdaq: QNT) (“Quantinuum“) today announced it will release its financial results for the second quarter (ending on June 30, 2026) after market close on August 11, 2026. Quantinuum will host a conference call at 5:00 PM Eastern time that same day to discuss its financial results. The call will […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/28/quantinuum-to-report-second-quarter-financial-results-on-august-11-2026/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum Machine-Learning Design Targets Training And Scaling Barriers]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-machine-learning-design-targets-training-and-scaling-barriers-bd5d7e</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-machine-learning-design-targets-training-and-scaling-barriers-bd5d7e</guid>
            <pubDate>Tue, 28 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief A proposed quantum machine-learning framework could make larger quantum neural networks easier to train while preserving computations that are dif...]]></description>
            <content:encoded><![CDATA[
# Quantum Machine-Learning Design Targets Training And Scaling Barriers

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/28/quantum-machine-learning-design-targets-training-and-scaling-barriers/) on July 28, 2026.

Insider Brief A proposed quantum machine-learning framework could make larger quantum neural networks easier to train while preserving computations that are difficult for conventional computers to reproduce. The study, posted on the arXiv preprint server, presents two quantum-circuit designs intended to address several problems that have limited efforts to use quantum computers for machine learning. […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/28/quantum-machine-learning-design-targets-training-and-scaling-barriers/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Riverlane and Unitary Foundation Launch ‘Deltakit Community Fund’ to Accelerate Open-Source Quantum Error Correction]]></title>
            <link>https://quantumcomputinginfo.com/blog/riverlane-and-unitary-foundation-launch-deltakit-community-fund-to-accelerate-open-source-quantum-error-correction-ffbc09</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/riverlane-and-unitary-foundation-launch-deltakit-community-fund-to-accelerate-open-source-quantum-error-correction-ffbc09</guid>
            <pubDate>Tue, 28 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Riverlane, the world leader in quantum error correction (QEC), and the Unitary Foundation, a non-profit dedicated to scaling the o...]]></description>
            <content:encoded><![CDATA[
# Riverlane and Unitary Foundation Launch ‘Deltakit Community Fund’ to Accelerate Open-Source Quantum Error Correction

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/28/riverlane-unitary-foundation-deltakit-community-fund/) on July 28, 2026.

Insider Brief Press release – Riverlane, the world leader in quantum error correction (QEC), and the Unitary Foundation, a non-profit dedicated to scaling the open-source quantum ecosystem, today announced the launch of the Deltakit Community Fund. This new rolling, quarterly initiative is designed to support external software contributors building essential, production-grade features for Deltakit, Riverlane’s […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/28/riverlane-unitary-foundation-deltakit-community-fund/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Two Hands Corporation Opens External Beta Testing for EntangleX Quantum Circuit Simulator]]></title>
            <link>https://quantumcomputinginfo.com/blog/two-hands-corporation-opens-external-beta-testing-for-entanglex-quantum-circuit-simulator-02fb23</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/two-hands-corporation-opens-external-beta-testing-for-entanglex-quantum-circuit-simulator-02fb23</guid>
            <pubDate>Tue, 28 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Two Hands Corporation (OTCID: TWOH) (the “Company”) today announced that the base user interface for EntangleX, its internally dev...]]></description>
            <content:encoded><![CDATA[
# Two Hands Corporation Opens External Beta Testing for EntangleX Quantum Circuit Simulator

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/28/two-hands-corporation-entanglex-beta-testing/) on July 28, 2026.

Insider Brief Press release – Two Hands Corporation (OTCID: TWOH) (the “Company”) today announced that the base user interface for EntangleX, its internally developed quantum circuit simulation software platform, is now available to selected external partners for third-party beta testing. The Company previously announced that it completed its corporate name change to Quantum X Inc. and […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/28/two-hands-corporation-entanglex-beta-testing/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Vietnam Hosts International Quantum Hackathon Focused on Real-World Applications]]></title>
            <link>https://quantumcomputinginfo.com/blog/vietnam-hosts-international-quantum-hackathon-focused-on-real-world-applications-e63dd1</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/vietnam-hosts-international-quantum-hackathon-focused-on-real-world-applications-e63dd1</guid>
            <pubDate>Tue, 28 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief The finals of the 2026 Quantum Computing for Social Good International Hackathon opened on July 24 in Gia Lai province, bringing together 27 final...]]></description>
            <content:encoded><![CDATA[
# Vietnam Hosts International Quantum Hackathon Focused on Real-World Applications

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/28/vietnam-international-quantum-hackathon-finals/) on July 28, 2026.

Insider Brief The finals of the 2026 Quantum Computing for Social Good International Hackathon opened on July 24 in Gia Lai province, bringing together 27 finalist teams comprising nearly 100 contestants from a pool of more than 500 applications submitted by participants from 30 countries and territories, Vietnam Investment Review reported. The event is organised […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/28/vietnam-international-quantum-hackathon-finals/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[ZuriQ Raises $25.5 Million to Scale Two-Dimensional Trapped-Ion Quantum Processors]]></title>
            <link>https://quantumcomputinginfo.com/blog/zuriq-raises-255-million-to-scale-two-dimensional-trapped-ion-quantum-processors-6866b4</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/zuriq-raises-255-million-to-scale-two-dimensional-trapped-ion-quantum-processors-6866b4</guid>
            <pubDate>Tue, 28 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – ZuriQ, a Swiss quantum computing company spun out of ETH Zürich, today announced it has raised $25.5 million in seed funding to sc...]]></description>
            <content:encoded><![CDATA[
# ZuriQ Raises $25.5 Million to Scale Two-Dimensional Trapped-Ion Quantum Processors

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/28/zuriq-raises-25-5-million-2d-trapped-ion-quantum-processors/) on July 28, 2026.

Insider Brief Press release – ZuriQ, a Swiss quantum computing company spun out of ETH Zürich, today announced it has raised $25.5 million in seed funding to scale its trapped-ion quantum processors. The round builds on the company’s $4.2 million pre-seed round in 2025 and is led by Quantonation, with participation from Forward.one, Extantia, Firgun Ventures, and all previous […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/28/zuriq-raises-25-5-million-2d-trapped-ion-quantum-processors/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Bias-preserving cat-cat CNOT gate via vacuum-conditional beam-splitter]]></title>
            <link>https://quantumcomputinginfo.com/blog/bias-preserving-cat-cat-cnot-gate-via-vacuum-conditional-beam-splitter-fd61b4</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/bias-preserving-cat-cat-cnot-gate-via-vacuum-conditional-beam-splitter-fd61b4</guid>
            <pubDate>Tue, 28 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.22852v1 Announce Type: new Abstract: Cat qubits can exhibit strong noise bias due to their exponentially enhanced bit-flip times and only polynomiall...]]></description>
            <content:encoded><![CDATA[
# Bias-preserving cat-cat CNOT gate via vacuum-conditional beam-splitter

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.22852) on July 28, 2026.

arXiv:2607.22852v1 Announce Type: new Abstract: Cat qubits can exhibit strong noise bias due to their exponentially enhanced bit-flip times and only polynomially reduced phase-flip times with increasing photon number, which makes them attractive candidates for hardware-efficient quantum error correction. However, it is difficult to maintain this strong noise bias in logical operations such as CNOT gates between cats. Here, we propose a coherent CNOT gate scheme between two dissipative cats that preserves the exponential noise bias. The proposed gate relies only on unitary operations, which avoids the non-idealities associated with many existing gate schemes that rely on engineered dissipations. Assuming good component lifetimes and precise nonlinearity engineering, the proposed gate can en...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.22852)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Machine Learning of Quantum Entanglement from Noisy Measurements]]></title>
            <link>https://quantumcomputinginfo.com/blog/machine-learning-of-quantum-entanglement-from-noisy-measurements-cfbc51</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/machine-learning-of-quantum-entanglement-from-noisy-measurements-cfbc51</guid>
            <pubDate>Tue, 28 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.22853v1 Announce Type: new Abstract: In this work, we investigate the application of Machine Learning (ML) algorithms to the identification and quant...]]></description>
            <content:encoded><![CDATA[
# Machine Learning of Quantum Entanglement from Noisy Measurements

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.22853) on July 28, 2026.

arXiv:2607.22853v1 Announce Type: new Abstract: In this work, we investigate the application of Machine Learning (ML) algorithms to the identification and quantitative characterization of quantum entanglement in polarization-entangled photon pairs. The analysis is based on simulated symmetric, informationally complete, positive operator-valued measure (SIC-POVM) measurement data, where each two-qubit state is represented by a 16-dimensional measurement vector corresponding to experimentally accessible coincidence counts. The generated SIC-POVM measurement data include Poissonian shot noise. Several supervised ML algorithms, including Logistic Regression, k-Nearest Neighbors, Decision Trees, Support Vector Machines, and Random Forests, are applied to the classification of separable and enta...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.22853)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Practical advantage beyond the quadratic speedup limit with fully-quantum walks]]></title>
            <link>https://quantumcomputinginfo.com/blog/practical-advantage-beyond-the-quadratic-speedup-limit-with-fully-quantum-walks-3ba0fb</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/practical-advantage-beyond-the-quadratic-speedup-limit-with-fully-quantum-walks-3ba0fb</guid>
            <pubDate>Tue, 28 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.22818v1 Announce Type: new Abstract: We introduce a new class of fully-quantum Metropolis walks in which both the proposal and acceptance steps are i...]]></description>
            <content:encoded><![CDATA[
# Practical advantage beyond the quadratic speedup limit with fully-quantum walks

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.22818) on July 28, 2026.

arXiv:2607.22818v1 Announce Type: new Abstract: We introduce a new class of fully-quantum Metropolis walks in which both the proposal and acceptance steps are intrinsically quantum. Unlike standard quantum walks obtained by quantizing classically efficient Markov chains, our algorithm employs Hamiltonian simulation as a quantum-native proposal mechanism, enlarging the class of quantum walks beyond classical counterparts. We target the problem of sampling from the low-temperature Gibbs distribution of classical dense Ising models, within a fixed error in total variation distance. This approach achieves about a cubic polynomial asymptotic advantage over previous quantum-walks, resulting in a total sixth-degree polynomial queries speedup compared to the best classical walk. This shows that sp...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.22818)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[ViBra: Configuration Interaction for Anharmonic Vibrational Spectroscopy and Quantum-Sampled Configuration Spaces]]></title>
            <link>https://quantumcomputinginfo.com/blog/vibra-configuration-interaction-for-anharmonic-vibrational-spectroscopy-and-quantum-sampled-configuration-spaces-d36c5e</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/vibra-configuration-interaction-for-anharmonic-vibrational-spectroscopy-and-quantum-sampled-configuration-spaces-d36c5e</guid>
            <pubDate>Tue, 28 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.22850v1 Announce Type: new Abstract: Quantum-centric workflows are a promising route to improving the accuracy of property predictions in computation...]]></description>
            <content:encoded><![CDATA[
# ViBra: Configuration Interaction for Anharmonic Vibrational Spectroscopy and Quantum-Sampled Configuration Spaces

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.22850) on July 28, 2026.

arXiv:2607.22850v1 Announce Type: new Abstract: Quantum-centric workflows are a promising route to improving the accuracy of property predictions in computational chemistry and materials science. By integrating quantum sampling algorithms with classical solvers, electronic structure calculations have recently demonstrated their potential even on noisy intermediate-scale quantum devices. In principle, the method of Vibrational Configuration Interaction (VCI) is suitable for integration with quantum sampling algorithms as well. However, demonstrations of computational workflows for quantum-centric, vibrational property predictions are still lacking. Here, we introduce a methodology for performing anharmonic vibrational structure calculations that can be deployed in a hybrid, quantum-classica...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.22850)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Wigner negativity and stellar rank for SU(1,1) states]]></title>
            <link>https://quantumcomputinginfo.com/blog/wigner-negativity-and-stellar-rank-for-su11-states-47e951</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/wigner-negativity-and-stellar-rank-for-su11-states-47e951</guid>
            <pubDate>Tue, 28 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.22810v1 Announce Type: new Abstract: Quasiprobability distributions for systems endowed with SU(1,1) dynamical symmetry have received surprisingly li...]]></description>
            <content:encoded><![CDATA[
# Wigner negativity and stellar rank for SU(1,1) states

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.22810) on July 28, 2026.

arXiv:2607.22810v1 Announce Type: new Abstract: Quasiprobability distributions for systems endowed with SU(1,1) dynamical symmetry have received surprisingly little attention, despite the central role of this symmetry in two-photon physics, squeezed states, and nonlinear interferometry. Here, we fill this gap by constructing a full covariant family of $s$-ordered quasiprobability distributions defined on the two-sheeted hyperboloid, or equivalently, on the Poincar\'e unit disk via stereographic projection. A key result is that the Wigner function is strictly positive for all Perelomov SU(1,1) coherent states, in sharp contrast to the SU(2) case. This positivity endows Wigner negativity with an unambiguous operational meaning: any negative volume is a direct signature of genuinely quantum b...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.22810)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Applications Open for Tennessee Quantum Hackathon Focused on Energy Applications]]></title>
            <link>https://quantumcomputinginfo.com/blog/applications-open-for-tennessee-quantum-hackathon-focused-on-energy-applications-71c196</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/applications-open-for-tennessee-quantum-hackathon-focused-on-energy-applications-71c196</guid>
            <pubDate>Mon, 27 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Applications are now open for the Tennessee Quantum Hackathon hosted by The Company Lab (CO.LAB) in partnership with the Chattanoo...]]></description>
            <content:encoded><![CDATA[
# Applications Open for Tennessee Quantum Hackathon Focused on Energy Applications

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/27/tennessee-quantum-hackathon-energy-applications/) on July 27, 2026.

Insider Brief Press release – Applications are now open for the Tennessee Quantum Hackathon hosted by The Company Lab (CO.LAB) in partnership with the Chattanooga Quantum Collaborative (CQC) and the University of Tennessee at Chattanooga (UTC). The 36-hour innovation challenge will take place November 13–15 in Chattanooga. College students from a range of disciplines will […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/27/tennessee-quantum-hackathon-energy-applications/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[AT&T Expands D-Wave Partnership to Optimize Telecom Network Operations and Agentic AI]]></title>
            <link>https://quantumcomputinginfo.com/blog/att-expands-d-wave-partnership-to-optimize-telecom-network-operations-and-agentic-ai-57bc85</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/att-expands-d-wave-partnership-to-optimize-telecom-network-operations-and-agentic-ai-57bc85</guid>
            <pubDate>Mon, 27 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Telecommunications leader AT&T (NYSE: T) has signed a commercial agreement with D-Wave Quantum Inc. (NASDAQ: QBTS) to expand its use of quantum annealing techno...]]></description>
            <content:encoded><![CDATA[
# AT&T Expands D-Wave Partnership to Optimize Telecom Network Operations and Agentic AI

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/att-expands-d-wave-partnership-to-optimize-telecom-network-operations-and-agentic-ai/) on July 27, 2026.

Telecommunications leader AT&T (NYSE: T) has signed a commercial agreement with D-Wave Quantum Inc. (NASDAQ: QBTS) to expand its use of quantum annealing technology across its network infrastructure operations. Building on initial pilot benchmarks—where D-Wave's quantum annealing hardware reduced a network optimization processing workload from one hour down to under 15 seconds—AT&T plans to integrate [...] The post AT&T Expands D-Wave Partnership to Optimize Telecom Network Operations and Agentic AI appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/att-expands-d-wave-partnership-to-optimize-telecom-network-operations-and-agentic-ai/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Bloq Quantum and QClairvoyance Partner on Quantum Education and Workforce Training]]></title>
            <link>https://quantumcomputinginfo.com/blog/bloq-quantum-and-qclairvoyance-partner-on-quantum-education-and-workforce-training-aa1632</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/bloq-quantum-and-qclairvoyance-partner-on-quantum-education-and-workforce-training-aa1632</guid>
            <pubDate>Mon, 27 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Bloq Quantum, a leading provider of enterprise quantum software infrastructure, today announced a strategic partnership with QClai...]]></description>
            <content:encoded><![CDATA[
# Bloq Quantum and QClairvoyance Partner on Quantum Education and Workforce Training

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/27/bloq-quantum-qclairvoyance-quantum-education-partnership/) on July 27, 2026.

Insider Brief Press release – Bloq Quantum, a leading provider of enterprise quantum software infrastructure, today announced a strategic partnership with QClairvoyance, a premier firm dedicated to research and education in quantum technologies. This collaboration establishes QClairvoyance as an official “Quantum Skilling Partner,” driving strategic education, skilling, and institutional outreach to accelerate the adoption of […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/27/bloq-quantum-qclairvoyance-quantum-education-partnership/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[D-Wave and AT&T Explore Quantum Computing Applications in Network Operations]]></title>
            <link>https://quantumcomputinginfo.com/blog/d-wave-and-att-explore-quantum-computing-applications-in-network-operations-0466e2</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/d-wave-and-att-explore-quantum-computing-applications-in-network-operations-0466e2</guid>
            <pubDate>Mon, 27 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – D-Wave Quantum Inc. (NASDAQ: QBTS), (“D-Wave” or the “Company”), the only dual-platform quantum computing company providing both a...]]></description>
            <content:encoded><![CDATA[
# D-Wave and AT&T Explore Quantum Computing Applications in Network Operations

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/27/d-wave-att-quantum-network-operations/) on July 27, 2026.

Insider Brief Press release – D-Wave Quantum Inc. (NASDAQ: QBTS), (“D-Wave” or the “Company”), the only dual-platform quantum computing company providing both annealing and gate-model systems, software and services, and AT&T (NYSE: T) today announced that AT&T has signed an agreement to expand its use of D-Wave’s quantum computing technology and plans to use the technology to […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/27/d-wave-att-quantum-network-operations/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[IonQ to Report Second Quarter 2026 Financial Results on August 5]]></title>
            <link>https://quantumcomputinginfo.com/blog/ionq-to-report-second-quarter-2026-financial-results-on-august-5-962f19</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ionq-to-report-second-quarter-2026-financial-results-on-august-5-962f19</guid>
            <pubDate>Mon, 27 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – IonQ (NYSE: IONQ), the world’s leading quantum platform company, today announced that the company will release its financial resul...]]></description>
            <content:encoded><![CDATA[
# IonQ to Report Second Quarter 2026 Financial Results on August 5

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/27/ionq-to-report-second-quarter-2026-financial-results-on-august-5-2026/) on July 27, 2026.

Insider Brief Press release – IonQ (NYSE: IONQ), the world’s leading quantum platform company, today announced that the company will release its financial results for the quarter ended June 30, 2026, on Wednesday, August 5, 2026, after the financial markets close. IonQ will host a conference call at 4:30 PM Eastern that same day to […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/27/ionq-to-report-second-quarter-2026-financial-results-on-august-5-2026/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Long Live Ytterbium! Long-lived States Found in Trapped Ions Open New Doors For Quantum Computing And Atomic Clocks]]></title>
            <link>https://quantumcomputinginfo.com/blog/long-live-ytterbium-long-lived-states-found-in-trapped-ions-open-new-doors-for-quantum-computing-and-atomic-clocks-68f94b</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/long-live-ytterbium-long-lived-states-found-in-trapped-ions-open-new-doors-for-quantum-computing-and-atomic-clocks-68f94b</guid>
            <pubDate>Mon, 27 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief PRESS RELEASE — Researchers from the Universities of Amsterdam and New South Wales have answered a question that has been around for decades: whet...]]></description>
            <content:encoded><![CDATA[
# Long Live Ytterbium! Long-lived States Found in Trapped Ions Open New Doors For Quantum Computing And Atomic Clocks

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/27/long-live-ytterbium-long-lived-states-found-in-trapped-ions-open-new-doors-for-quantum-computing-and-atomic-clocks/) on July 27, 2026.

Insider Brief PRESS RELEASE — Researchers from the Universities of Amsterdam and New South Wales have answered a question that has been around for decades: whether ions of the metal ytterbium can enter certain long-lived and nearly stable states, and if so, for how long. The measured long-lived states may find applications in quantum computers […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/27/long-live-ytterbium-long-lived-states-found-in-trapped-ions-open-new-doors-for-quantum-computing-and-atomic-clocks/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Multiverse Computing Announces Series C Fundraising Targeting up to $570 Million]]></title>
            <link>https://quantumcomputinginfo.com/blog/multiverse-computing-announces-series-c-fundraising-targeting-up-to-570-million-4010dc</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/multiverse-computing-announces-series-c-fundraising-targeting-up-to-570-million-4010dc</guid>
            <pubDate>Mon, 27 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief PRESS RELEASE — Multiverse Computing, the global leader in efficient AI, today announced a $570 million (€500M) Series C funding round at a $1.7 b...]]></description>
            <content:encoded><![CDATA[
# Multiverse Computing Announces Series C Fundraising Targeting up to $570 Million

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/27/multiverse-computing-announces-series-c-fundraising-targeting-up-to-570-million/) on July 27, 2026.

Insider Brief PRESS RELEASE — Multiverse Computing, the global leader in efficient AI, today announced a $570 million (€500M) Series C funding round at a $1.7 billion (€1.5B) pre-money valuation, a 5x step-up from its Series B. The round is co-led by Forgepoint Capital International, BNPP SIVF, and Bullhound Capital, with additional commitments to date […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/27/multiverse-computing-announces-series-c-fundraising-targeting-up-to-570-million/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Neutral-Atom Researchers Lay Out Industry-Wide Roadmap Toward Practical Quantum Computing]]></title>
            <link>https://quantumcomputinginfo.com/blog/neutral-atom-researchers-lay-out-industry-wide-roadmap-toward-practical-quantum-computing-d73db7</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/neutral-atom-researchers-lay-out-industry-wide-roadmap-toward-practical-quantum-computing-d73db7</guid>
            <pubDate>Mon, 27 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Over the years, numerous quantum companies have released roadmaps proposing how they plan to move their technologies into the marketplace over the...]]></description>
            <content:encoded><![CDATA[
# Neutral-Atom Researchers Lay Out Industry-Wide Roadmap Toward Practical Quantum Computing

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/27/neutral-atom-researchers-lay-out-industry-wide-roadmap-toward-practical-quantum-computing/) on July 27, 2026.

Insider Brief Over the years, numerous quantum companies have released roadmaps proposing how they plan to move their technologies into the marketplace over the coming months and years. Now, in what is an unprecedented move, a broad group of quantum scientists, engineers and entrepreneurs has outlined a path for neutral-atom computers to move from experimental […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/27/neutral-atom-researchers-lay-out-industry-wide-roadmap-toward-practical-quantum-computing/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[New quantum chip architecture could use built-in vibrations to link distant qubits]]></title>
            <link>https://quantumcomputinginfo.com/blog/new-quantum-chip-architecture-could-use-built-in-vibrations-to-link-distant-qubits-ad813c</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/new-quantum-chip-architecture-could-use-built-in-vibrations-to-link-distant-qubits-ad813c</guid>
            <pubDate>Mon, 27 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[A new concept from Warwick researchers could help solve one of the biggest challenges to building large-scale quantum computers: enabling communication between...]]></description>
            <content:encoded><![CDATA[
# New quantum chip architecture could use built-in vibrations to link distant qubits

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-quantum-chip-architecture-built-vibrations.html) on July 27, 2026.

A new concept from Warwick researchers could help solve one of the biggest challenges to building large-scale quantum computers: enabling communication between vast numbers of quantum bits (qubits) over long distances across a single chip.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-quantum-chip-architecture-built-vibrations.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Pittsburgh Supercomputing Center Will Build New Hybrid Quantum-Classical Supercomputer]]></title>
            <link>https://quantumcomputinginfo.com/blog/pittsburgh-supercomputing-center-will-build-new-hybrid-quantum-classical-supercomputer-980112</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/pittsburgh-supercomputing-center-will-build-new-hybrid-quantum-classical-supercomputer-980112</guid>
            <pubDate>Mon, 27 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief PRESS RELEASE — A hybrid quantum-classical computer will soon operate at the Pittsburgh Supercomputing Center, thanks to a $5-million grant from t...]]></description>
            <content:encoded><![CDATA[
# Pittsburgh Supercomputing Center Will Build New Hybrid Quantum-Classical Supercomputer

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/27/pittsburgh-supercomputing-center-will-build-new-hybrid-quantum-classical-supercomputer/) on July 27, 2026.

Insider Brief PRESS RELEASE — A hybrid quantum-classical computer will soon operate at the Pittsburgh Supercomputing Center, thanks to a $5-million grant from the National Science Foundation. To deliver on the grant, PSC, HPE, and Rigetti Computing will partner together to build the TangleLab supercomputing testbed. “TangleLab continues PSC’s long tradition of making next-generation computing […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/27/pittsburgh-supercomputing-center-will-build-new-hybrid-quantum-classical-supercomputer/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[QTREX and Northeastern University Launch Quantum Interconnect Research Collaboration]]></title>
            <link>https://quantumcomputinginfo.com/blog/qtrex-and-northeastern-university-launch-quantum-interconnect-research-collaboration-a93ba0</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/qtrex-and-northeastern-university-launch-quantum-interconnect-research-collaboration-a93ba0</guid>
            <pubDate>Mon, 27 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – QTREX Quantum Ltd. (Nasdaq: QTEX) (“QTREX” or the “Company”) a company focused on advancing Additively Manufactured Electronics (“...]]></description>
            <content:encoded><![CDATA[
# QTREX and Northeastern University Launch Quantum Interconnect Research Collaboration

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/27/qtrex-northeastern-university-quantum-interconnect-research/) on July 27, 2026.

Insider Brief Press release – QTREX Quantum Ltd. (Nasdaq: QTEX) (“QTREX” or the “Company”) a company focused on advancing Additively Manufactured Electronics (“AME”) for quantum computing infrastructure today announced the launch of a research collaboration with Northeastern University in Massachusetts, focused on advanced micro-system structures for cryogenic quantum interconnects. Pursuant to the collaboration agreement, Northeastern […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/27/qtrex-northeastern-university-quantum-interconnect-research/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[QTREX Quantum Partners with Northeastern University to Advance Cryogenic Interconnects]]></title>
            <link>https://quantumcomputinginfo.com/blog/qtrex-quantum-partners-with-northeastern-university-to-advance-cryogenic-interconnects-08de0d</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/qtrex-quantum-partners-with-northeastern-university-to-advance-cryogenic-interconnects-08de0d</guid>
            <pubDate>Mon, 27 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Israel-based hardware developer QTREX Quantum Ltd. (Nasdaq: QTEX) has launched a research collaboration with Northeastern University to develop advanced micro-s...]]></description>
            <content:encoded><![CDATA[
# QTREX Quantum Partners with Northeastern University to Advance Cryogenic Interconnects

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/qtrex-quantum-partners-with-northeastern-university-to-advance-cryogenic-interconnects/) on July 27, 2026.

Israel-based hardware developer QTREX Quantum Ltd. (Nasdaq: QTEX) has launched a research collaboration with Northeastern University to develop advanced micro-system structures for cryogenic quantum interconnects. Pursuant to the agreement, Northeastern grants QTREX a first option to negotiate a commercial license for all sole or jointly developed intellectual property arising directly from the joint research. Led [...] The post QTREX Quantum Partners with Northeastern University to Advance Cryogenic Interconnects appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/qtrex-quantum-partners-with-northeastern-university-to-advance-cryogenic-interconnects/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum neural networks get their first hardware test]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-neural-networks-get-their-first-hardware-test-1920c7</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-neural-networks-get-their-first-hardware-test-1920c7</guid>
            <pubDate>Mon, 27 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Neural networks have transformed how machines find patterns in data, from recognizing faces in photos to predicting the shapes of proteins. So far, all of this...]]></description>
            <content:encoded><![CDATA[
# Quantum neural networks get their first hardware test

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-quantum-neural-networks-hardware.html) on July 27, 2026.

Neural networks have transformed how machines find patterns in data, from recognizing faces in photos to predicting the shapes of proteins. So far, all of this progress has been made on ordinary classical computers, but with quantum computers now edging into practical use, there is a real possibility that neural networks could tap into distinctly quantum effects and operate in ways that classical machines never could. So far, however, neural networks have proven far more difficult to run on quantum hardware....

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-quantum-neural-networks-hardware.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum X Labs Tests AI-Based Error Correction Decoder With NVIDIA CUDA-Q Tools]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-x-labs-tests-ai-based-error-correction-decoder-with-nvidia-cuda-q-tools-7bcb65</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-x-labs-tests-ai-based-error-correction-decoder-with-nvidia-cuda-q-tools-7bcb65</guid>
            <pubDate>Mon, 27 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Quantum X Labs Inc. (Nasdaq: QXL) (“Quantum X” or the “Company”), an advanced technologies company, today announced progress on it...]]></description>
            <content:encoded><![CDATA[
# Quantum X Labs Tests AI-Based Error Correction Decoder With NVIDIA CUDA-Q Tools

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/27/quantum-x-labs-ai-error-correction-decoder-nvidia-cuda-q/) on July 27, 2026.

Insider Brief Press release – Quantum X Labs Inc. (Nasdaq: QXL) (“Quantum X” or the “Company”), an advanced technologies company, today announced progress on its technical roadmap for its AI-driven quantum error-correction program. The work is focused on reviewing QXL’s milestone results and draws on NVIDIA accelerated computing, the NVIDIA CUDA-Q QEC software libraries and, as QXL progresses […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/27/quantum-x-labs-ai-error-correction-decoder-nvidia-cuda-q/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Simple semiconductor films break light's front-back symmetry]]></title>
            <link>https://quantumcomputinginfo.com/blog/simple-semiconductor-films-break-lights-front-back-symmetry-28bbad</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/simple-semiconductor-films-break-lights-front-back-symmetry-28bbad</guid>
            <pubDate>Mon, 27 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Light typically interacts with a material the same way whether it enters through the front or the back—like polarized sunglasses that work the same from either...]]></description>
            <content:encoded><![CDATA[
# Simple semiconductor films break light's front-back symmetry

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-simple-semiconductor-front-symmetry.html) on July 27, 2026.

Light typically interacts with a material the same way whether it enters through the front or the back—like polarized sunglasses that work the same from either side. Cornell researchers have demonstrated a simple route to breaking that symmetry, opening new possibilities for photonics and quantum information processing.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-simple-semiconductor-front-symmetry.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Absent, Not Faint: Fisher-Information Limits and a Logarithmic Measurement-Design Cure for Passive Characterization of Coherent Qubit Noise]]></title>
            <link>https://quantumcomputinginfo.com/blog/absent-not-faint-fisher-information-limits-and-a-logarithmic-measurement-design-cure-for-passive-characterization-of-coherent-qubit-noise-74e2e2</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/absent-not-faint-fisher-information-limits-and-a-logarithmic-measurement-design-cure-for-passive-characterization-of-coherent-qubit-noise-74e2e2</guid>
            <pubDate>Mon, 27 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.21663v1 Announce Type: new Abstract: Calibrating a quantum processor means estimating error parameters, and estimation theory usually assumes a param...]]></description>
            <content:encoded><![CDATA[
# Absent, Not Faint: Fisher-Information Limits and a Logarithmic Measurement-Design Cure for Passive Characterization of Coherent Qubit Noise

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.21663) on July 27, 2026.

arXiv:2607.21663v1 Announce Type: new Abstract: Calibrating a quantum processor means estimating error parameters, and estimation theory usually assumes a parameter hard to estimate is faint: its signal is weak but present, so more repetitions or a richer model will recover it. This assumption fails for a leading hardware fault. A coherent over-rotation is a small systematic gate miscalibration. Measured through the cheapest data a device returns--one fixed-basis histogram--it is not faint but absent: to first order it leaves the distribution unchanged, indistinguishable from a compensating stochastic error, exactly as two numbers cannot be separated from their sum. For commuting single- and two-qubit transverse over-rotations, with known support on the canonical input, the histogram's Fis...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.21663)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Hash-QNeRF: Multiresolution Hash Encoding for Quantum Neural Radiance Fields]]></title>
            <link>https://quantumcomputinginfo.com/blog/hash-qnerf-multiresolution-hash-encoding-for-quantum-neural-radiance-fields-81a883</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/hash-qnerf-multiresolution-hash-encoding-for-quantum-neural-radiance-fields-81a883</guid>
            <pubDate>Mon, 27 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.21675v1 Announce Type: new Abstract: Neural Radiance Fields (NeRF) have revolutionized novel view synthesis, yet their classical implementations rema...]]></description>
            <content:encoded><![CDATA[
# Hash-QNeRF: Multiresolution Hash Encoding for Quantum Neural Radiance Fields

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.21675) on July 27, 2026.

arXiv:2607.21675v1 Announce Type: new Abstract: Neural Radiance Fields (NeRF) have revolutionized novel view synthesis, yet their classical implementations remain computationally intensive for high-fidelity rendering. QNeRF recently demonstrated the feasibility of training NeRF on gate-based quantum computers by combining amplitude embedding, parameterized quantum circuits (PQCs), parity-based measurements, and volumetric rendering. However, QNeRF relies on classical sinusoidal positional encoding for spatial coordinates, which scales poorly with scene complexity and resolution. In this work, we replace the sinusoidal positional encoding for spatial coordinates with the multiresolution hash encoding from Instant-NGP while keeping the view-direction encoding, amplitude MLP, quantum circuit,...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.21675)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Non-Clifford quantum cellular automata from invertible topological quantum field theories]]></title>
            <link>https://quantumcomputinginfo.com/blog/non-clifford-quantum-cellular-automata-from-invertible-topological-quantum-field-theories-fb840f</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/non-clifford-quantum-cellular-automata-from-invertible-topological-quantum-field-theories-fb840f</guid>
            <pubDate>Mon, 27 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.21697v1 Announce Type: new Abstract: Quantum cellular automata (QCAs) describe locality-preserving quantum dynamics and connect quantum information,...]]></description>
            <content:encoded><![CDATA[
# Non-Clifford quantum cellular automata from invertible topological quantum field theories

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.21697) on July 27, 2026.

arXiv:2607.21697v1 Announce Type: new Abstract: Quantum cellular automata (QCAs) describe locality-preserving quantum dynamics and connect quantum information, many-body physics, and topological quantum field theory (TQFT). Constructing a QCA from a TQFT, however, is challenging. Although a topological action can produce a commuting Hamiltonian realizing the desired ground state, it does not by itself specify an automorphism of the full local operator algebra. In this work, we develop a unified algebraic construction that extends the commuting generators of the Hamiltonian to a complete separator-flipper algebra on the full tensor-product Hilbert space, providing a microscopic definition of the corresponding QCA. In three spatial dimensions, our formalism unifies all previously known QCA c...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.21697)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum Correlations in Frustrated Three-Body Systems]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-correlations-in-frustrated-three-body-systems-cdff35</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-correlations-in-frustrated-three-body-systems-cdff35</guid>
            <pubDate>Mon, 27 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.21666v1 Announce Type: new Abstract: Many physical systems are not understood from first principles due to the presence of multi-body quantum correla...]]></description>
            <content:encoded><![CDATA[
# Quantum Correlations in Frustrated Three-Body Systems

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.21666) on July 27, 2026.

arXiv:2607.21666v1 Announce Type: new Abstract: Many physical systems are not understood from first principles due to the presence of multi-body quantum correlations. The effort taken to simulate such systems on classical computers increases exponentially with increase in the system size. We study simple, yet non-trivial, three-body frustrated systems that can help in understanding the underlying quantum correlations. First we investigate the ground state of helium-like atoms using the variational method and physically meaningful ansatze, revealing how quantum entanglement arises due to frustration in the system. Next we consider another frustrated three-body system, the hydrogen molecular ion, and analytically demonstrate the nature of its wavefunction arising from the quantum tunneling p...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.21666)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Tunable Mpemba Effect in a Prethermal Many-Body Spin Network]]></title>
            <link>https://quantumcomputinginfo.com/blog/tunable-mpemba-effect-in-a-prethermal-many-body-spin-network-db9fb8</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/tunable-mpemba-effect-in-a-prethermal-many-body-spin-network-db9fb8</guid>
            <pubDate>Mon, 27 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.21669v1 Announce Type: new Abstract: Relaxation in an interacting system is determined not only by its initial distance from equilibrium, but also by...]]></description>
            <content:encoded><![CDATA[
# Tunable Mpemba Effect in a Prethermal Many-Body Spin Network

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.21669) on July 27, 2026.

arXiv:2607.21669v1 Announce Type: new Abstract: Relaxation in an interacting system is determined not only by its initial distance from equilibrium, but also by the relaxation modes populated by the initial state. Here we experimentally observe and control the Mpemba effect, in which a state farther from equilibrium overtakes one initially closer, in an extended, disordered $^\{13\}$C nuclear-spin network in diamond. Field cycling allows us to prepare distinct spatial polarization profiles by independently controlling hyperpolarization and defect-mediated relaxation. We then track their evolution under Floquet driving, which stabilizes a long-lived prethermal regime. We observe reproducible Mpemba crossings and tune the crossing time over several orders of magnitude, from late-time thermal...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.21669)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[A quantum heat engine that simultaneously provides work and refrigeration]]></title>
            <link>https://quantumcomputinginfo.com/blog/a-quantum-heat-engine-that-simultaneously-provides-work-and-refrigeration-e37787</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/a-quantum-heat-engine-that-simultaneously-provides-work-and-refrigeration-e37787</guid>
            <pubDate>Sun, 26 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[The laws of thermodynamics state that heat naturally flows from hotter systems or regions to colder systems or regions until a state of thermal equilibrium is r...]]></description>
            <content:encoded><![CDATA[
# A quantum heat engine that simultaneously provides work and refrigeration

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-quantum-simultaneously-refrigeration.html) on July 26, 2026.

The laws of thermodynamics state that heat naturally flows from hotter systems or regions to colder systems or regions until a state of thermal equilibrium is reached. This simple principle underpins the operation of numerous technologies, ranging from refrigerators to power plants.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-quantum-simultaneously-refrigeration.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Near a black hole, gravity changes a quantum circuit's readings, not its rules]]></title>
            <link>https://quantumcomputinginfo.com/blog/near-a-black-hole-gravity-changes-a-quantum-circuits-readings-not-its-rules-2e0a4e</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/near-a-black-hole-gravity-changes-a-quantum-circuits-readings-not-its-rules-2e0a4e</guid>
            <pubDate>Sun, 26 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Imagine holding one of our most precise quantum devices at a fixed position outside a black hole. A Josephson junction—two superconductors separated by an ultra...]]></description>
            <content:encoded><![CDATA[
# Near a black hole, gravity changes a quantum circuit's readings, not its rules

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-black-hole-gravity-quantum-circuit.html) on July 26, 2026.

Imagine holding one of our most precise quantum devices at a fixed position outside a black hole. A Josephson junction—two superconductors separated by an ultrathin barrier—can turn a voltage into a quantum oscillation with extraordinary precision. Would intense gravity change that quantum rule, or only change how a faraway observer reads the device?

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-black-hole-gravity-quantum-circuit.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Bloq Quantum Expands Quantum Education and Workforce Ecosystem in India via Strategic Partnerships]]></title>
            <link>https://quantumcomputinginfo.com/blog/bloq-quantum-expands-quantum-education-and-workforce-ecosystem-in-india-via-strategic-partnerships-11c72d</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/bloq-quantum-expands-quantum-education-and-workforce-ecosystem-in-india-via-strategic-partnerships-11c72d</guid>
            <pubDate>Sat, 25 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Enterprise quantum software infrastructure provider Bloq Quantum has announced two strategic partnerships in Kerala, India, designed to accelerate quantum skill...]]></description>
            <content:encoded><![CDATA[
# Bloq Quantum Expands Quantum Education and Workforce Ecosystem in India via Strategic Partnerships

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/bloq-quantum-expands-quantum-education-and-workforce-ecosystem-in-india-via-strategic-partnerships/) on July 25, 2026.

Enterprise quantum software infrastructure provider Bloq Quantum has announced two strategic partnerships in Kerala, India, designed to accelerate quantum skilling, academic research, and institutional deployment across the region. The company signed a Memorandum of Understanding (MoU) with Sree Buddha College of Engineering (SBCE) to establish an undergraduate quantum computing laboratory and entered an alliance with [...] The post Bloq Quantum Expands Quantum Education and Workforce Ecosystem in India via Strategic Partnerships appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/bloq-quantum-expands-quantum-education-and-workforce-ecosystem-in-india-via-strategic-partnerships/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Guest Post: Inside Africa’s Coordinated Race to Secure a Post-Quantum Future]]></title>
            <link>https://quantumcomputinginfo.com/blog/guest-post-inside-africas-coordinated-race-to-secure-a-post-quantum-future-1e50ef</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/guest-post-inside-africas-coordinated-race-to-secure-a-post-quantum-future-1e50ef</guid>
            <pubDate>Sat, 25 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Guest Post by By Somtochukwu Igwegbe More than two trillion dollars moved through mobile money worldwide in 2025, and roughly two-thirds of that value flowed th...]]></description>
            <content:encoded><![CDATA[
# Guest Post: Inside Africa’s Coordinated Race to Secure a Post-Quantum Future

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/25/inside-africas-coordinated-race-to-secure-a-post-quantum-future/) on July 25, 2026.

Guest Post by By Somtochukwu Igwegbe More than two trillion dollars moved through mobile money worldwide in 2025, and roughly two-thirds of that value flowed through sub-Saharan Africa, according to GSMA’s State of the Industry Report on Mobile Money 2026. For a fifth of adults in the region, a mobile money account is the only […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/25/inside-africas-coordinated-race-to-secure-a-post-quantum-future/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Infleqtion to Deploy Fault-Tolerant Neutral-Atom Quantum Computer at Illinois Quantum Park]]></title>
            <link>https://quantumcomputinginfo.com/blog/infleqtion-to-deploy-fault-tolerant-neutral-atom-quantum-computer-at-illinois-quantum-park-3dc37d</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/infleqtion-to-deploy-fault-tolerant-neutral-atom-quantum-computer-at-illinois-quantum-park-3dc37d</guid>
            <pubDate>Sat, 25 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum computing and sensing company Infleqtion (NYSE: INFQ) has announced plans to deploy its fault-tolerant, neutral-atom quantum computer—Sqale—at the Illin...]]></description>
            <content:encoded><![CDATA[
# Infleqtion to Deploy Fault-Tolerant Neutral-Atom Quantum Computer at Illinois Quantum Park

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/infleqtion-to-deploy-fault-tolerant-neutral-atom-quantum-computer-at-illinois-quantum-park/) on July 25, 2026.

Quantum computing and sensing company Infleqtion (NYSE: INFQ) has announced plans to deploy its fault-tolerant, neutral-atom quantum computer—Sqale—at the Illinois Quantum & Microelectronics Park (IQMP) in Chicago, with hardware delivery scheduled for 2027. In parallel, the company opened its new Chicago Quantum Innovation Center, an application development hub that will initially function as a center [...] The post Infleqtion to Deploy Fault-Tolerant Neutral-Atom Quantum Computer at Illinois Quantum Park appeared first on Quantum Computing Report....

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To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/infleqtion-to-deploy-fault-tolerant-neutral-atom-quantum-computer-at-illinois-quantum-park/)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[IQMP and Q-STAR Sign MoU to Connect Illinois and Japanese Quantum Ecosystems]]></title>
            <link>https://quantumcomputinginfo.com/blog/iqmp-and-q-star-sign-mou-to-connect-illinois-and-japanese-quantum-ecosystems-b4677d</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/iqmp-and-q-star-sign-mou-to-connect-illinois-and-japanese-quantum-ecosystems-b4677d</guid>
            <pubDate>Sat, 25 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[The Illinois Quantum and Microelectronics Park (IQMP) has signed a Memorandum of Understanding (MoU) with Japan’s Quantum STrategic industry Alliance for Revolu...]]></description>
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# IQMP and Q-STAR Sign MoU to Connect Illinois and Japanese Quantum Ecosystems

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/iqmp-and-q-star-sign-mou-to-connect-illinois-and-japanese-quantum-ecosystems/) on July 25, 2026.

The Illinois Quantum and Microelectronics Park (IQMP) has signed a Memorandum of Understanding (MoU) with Japan’s Quantum STrategic industry Alliance for Revolution (Q-STAR) to build cross-border commercialization pathways, joint R&D pipelines, and supply chain connections between Japan and Illinois. Signed at the Global Quantum Forum in Chicago by IQMP CEO Harley Johnson and Q-STAR Global [...] The post IQMP and Q-STAR Sign MoU to Connect Illinois and Japanese Quantum Ecosystems appeared first on Quantum Computing Report....

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To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/iqmp-and-q-star-sign-mou-to-connect-illinois-and-japanese-quantum-ecosystems/)
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            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[News]]></title>
            <link>https://quantumcomputinginfo.com/blog/news-5dfedd</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/news-5dfedd</guid>
            <pubDate>Sat, 25 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Recent news items published within the last 6 months on quantum computing developments are listed below. Click on the hyperlinked item to go to the press releas...]]></description>
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# News

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/news/) on July 25, 2026.

Recent news items published within the last 6 months on quantum computing developments are listed below. Click on the hyperlinked item to go to the press release or news article for more details. For older news items published in 2025 click here, for 2024 click here, for 2023 click here, for 2022 click here, for 2021 click here, for 2020 [...] The post News appeared first on Quantum Computing Report.

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To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/news/)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Qedma Integrates QESEM Error Mitigation Software with Quantinuum Platform]]></title>
            <link>https://quantumcomputinginfo.com/blog/qedma-integrates-qesem-error-mitigation-software-with-quantinuum-platform-cff940</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/qedma-integrates-qesem-error-mitigation-software-with-quantinuum-platform-cff940</guid>
            <pubDate>Sat, 25 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum software provider Qedma has announced a technical integration with Quantinuum, making its Quantum Error Suppression and Error Mitigation (QESEM) platfor...]]></description>
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# Qedma Integrates QESEM Error Mitigation Software with Quantinuum Platform

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/qedma-integrates-qesem-error-mitigation-software-with-quantinuum-platform/) on July 25, 2026.

Quantum software provider Qedma has announced a technical integration with Quantinuum, making its Quantum Error Suppression and Error Mitigation (QESEM) platform directly available across Quantinuum’s trapped-ion hardware systems. Developed over the past year through Qedma’s role as a founding member of the Quantinuum Startup Partner Program, the integration combines Qedma’s hardware-agnostic noise-reduction algorithms with Quantinuum’s [...] The post Qedma Integrates QESEM Error Mitigation Software with Quantinuum Platform appeared first on Quantum Computing Report....

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To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/qedma-integrates-qesem-error-mitigation-software-with-quantinuum-platform/)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Quantum Elements Launches “Orbit” as Qiskit Function for Automated Error Suppression]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-elements-launches-orbit-as-qiskit-function-for-automated-error-suppression-01bc97</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-elements-launches-orbit-as-qiskit-function-for-automated-error-suppression-01bc97</guid>
            <pubDate>Sat, 25 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum software provider Quantum Elements has released Orbit, an advanced error suppression tool accessible as a Qiskit Function in the IBM Qiskit Functions Ca...]]></description>
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# Quantum Elements Launches “Orbit” as Qiskit Function for Automated Error Suppression

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/quantum-elements-launches-orbit-as-qiskit-function-for-automated-error-suppression/) on July 25, 2026.

Quantum software provider Quantum Elements has released Orbit, an advanced error suppression tool accessible as a Qiskit Function in the IBM Qiskit Functions Catalog. Designed to streamline noise management for quantum developers, Orbit provides members of the IBM Quantum Network with an automated, low-overhead suite to improve circuit execution fidelity on live processors. The tool [...] The post Quantum Elements Launches “Orbit” as Qiskit Function for Automated Error Suppression appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/quantum-elements-launches-orbit-as-qiskit-function-for-automated-error-suppression/)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[SKKU Researchers Identify Room-Temperature “Spin Qubit” Defect in Zinc Oxide Semiconductors]]></title>
            <link>https://quantumcomputinginfo.com/blog/skku-researchers-identify-room-temperature-spin-qubit-defect-in-zinc-oxide-semiconductors-d8f749</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/skku-researchers-identify-room-temperature-spin-qubit-defect-in-zinc-oxide-semiconductors-d8f749</guid>
            <pubDate>Sat, 25 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[The computational workflow of defect candidate search with critical parameters. An international research team led by Professor Hosung Seo at Sungkyunkwan Unive...]]></description>
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# SKKU Researchers Identify Room-Temperature “Spin Qubit” Defect in Zinc Oxide Semiconductors

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/skku-researchers-identify-room-temperature-spin-qubit-defect-in-zinc-oxide-semiconductors/) on July 25, 2026.

The computational workflow of defect candidate search with critical parameters. An international research team led by Professor Hosung Seo at Sungkyunkwan University (SKKU)—in collaboration with researchers at the University of Wisconsin–Madison and the University of Washington—has computationally identified a novel atomic defect in zinc oxide (ZnO) capable of functioning as a high-fidelity "spin qubit." Published [...] The post SKKU Researchers Identify Room-Temperature “Spin Qubit” Defect in Zinc Oxide Semiconductors appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/skku-researchers-identify-room-temperature-spin-qubit-defect-in-zinc-oxide-semiconductors/)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Terra Quantum and Apex.AI Demonstrate Quantum-Safe Security for Edge-to-Cloud Intelligent Systems]]></title>
            <link>https://quantumcomputinginfo.com/blog/terra-quantum-and-apexai-demonstrate-quantum-safe-security-for-edge-to-cloud-intelligent-systems-e81ccd</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/terra-quantum-and-apexai-demonstrate-quantum-safe-security-for-edge-to-cloud-intelligent-systems-e81ccd</guid>
            <pubDate>Sat, 25 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum technology firm Terra Quantum and software-defined vehicle (SDV) provider Apex.AI have validated the integration of NIST-standardized post-quantum crypt...]]></description>
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# Terra Quantum and Apex.AI Demonstrate Quantum-Safe Security for Edge-to-Cloud Intelligent Systems

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/terra-quantum-and-apex-ai-demonstrate-quantum-safe-security-for-edge-to-cloud-intelligent-systems/) on July 25, 2026.

Quantum technology firm Terra Quantum and software-defined vehicle (SDV) provider Apex.AI have validated the integration of NIST-standardized post-quantum cryptography (PQC) into cloud-connected, autonomous robotic environments. Executed using Apex.OS—a safety-certified software foundation for mobility and robotics—the joint integration establishes quantum-resistant edge-to-cloud communications without altering underlying application logic, developer APIs, or real-time message-passing architectures. Autonomous vehicles, industrial [...] The post Terra Quantum and Apex.AI Demonstrate Quantum-Safe Security for Edge-to-Cloud Intelligent Systems appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/terra-quantum-and-apex-ai-demonstrate-quantum-safe-security-for-edge-to-cloud-intelligent-systems/)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Who’s News: Strategic Appointments at Quantum Computing Inc. and Quantinuum]]></title>
            <link>https://quantumcomputinginfo.com/blog/whos-news-strategic-appointments-at-quantum-computing-inc-and-quantinuum-19abb2</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/whos-news-strategic-appointments-at-quantum-computing-inc-and-quantinuum-19abb2</guid>
            <pubDate>Sat, 25 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum Computing Inc. (QCi) has appointed Susan Hunt as Chief Revenue Officer (CRO). Hunt brings over 30 years of experience in enterprise sales and go-to-mark...]]></description>
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# Who’s News: Strategic Appointments at Quantum Computing Inc. and Quantinuum

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/whos-news-strategic-appointments-at-quantum-computing-inc-and-quantinuum/) on July 25, 2026.

Quantum Computing Inc. (QCi) has appointed Susan Hunt as Chief Revenue Officer (CRO). Hunt brings over 30 years of experience in enterprise sales and go-to-market execution across AI, cloud computing, and telecommunications, having previously held executive roles at Orbital Insight, Nuance Communications, LivePerson, Salesforce, and Sprint PCS. Concurrently, former CRO Pouya Dianat has transitioned into [...] The post Who’s News: Strategic Appointments at Quantum Computing Inc. and Quantinuum appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/whos-news-strategic-appointments-at-quantum-computing-inc-and-quantinuum/)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Zero Point Cryogenics and Ability Engineering Technology Anchor IQMP FaQtory in Chicago]]></title>
            <link>https://quantumcomputinginfo.com/blog/zero-point-cryogenics-and-ability-engineering-technology-anchor-iqmp-faqtory-in-chicago-03bdea</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/zero-point-cryogenics-and-ability-engineering-technology-anchor-iqmp-faqtory-in-chicago-03bdea</guid>
            <pubDate>Sat, 25 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Following the federal funding rollout for The Bloch Quantum Tech Hub, the Illinois Quantum and Microelectronics Park (IQMP) has secured its first two physical s...]]></description>
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# Zero Point Cryogenics and Ability Engineering Technology Anchor IQMP FaQtory in Chicago

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/zero-point-cryogenics-and-ability-engineering-technology-anchor-iqmp-faqtory-in-chicago/) on July 25, 2026.

Following the federal funding rollout for The Bloch Quantum Tech Hub, the Illinois Quantum and Microelectronics Park (IQMP) has secured its first two physical supply-chain tenants: Edmonton-based dilution refrigerator manufacturer Zero Point Cryogenics (ZPC) and Illinois-based precision engineering firm Ability Engineering Technology (AET). Both companies will establish operational footprints at the IQMP FaQtory—a specialized campus [...] The post Zero Point Cryogenics and Ability Engineering Technology Anchor IQMP FaQtory in Chicago appeared first on Quantum Computing Report....

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To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/zero-point-cryogenics-and-ability-engineering-technology-anchor-iqmp-faqtory-in-chicago/)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Comments on IBM’s Acquisition of the HRL Laboratories]]></title>
            <link>https://quantumcomputinginfo.com/blog/comments-on-ibms-acquisition-of-the-hrl-laboratories-f2e149</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/comments-on-ibms-acquisition-of-the-hrl-laboratories-f2e149</guid>
            <pubDate>Fri, 24 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[By Doug Finke IBM Quantum’s announcement about their intended acquisition of HRL Laboratories is quite important and a little surprising. But if you look at thi...]]></description>
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# Comments on IBM’s Acquisition of the HRL Laboratories

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/comments-on-ibms-acquisition-of-the-hrl-laboratories/) on July 24, 2026.

By Doug Finke IBM Quantum’s announcement about their intended acquisition of HRL Laboratories is quite important and a little surprising. But if you look at this further, there are good reasons why this makes a lot of sense. Here are our thoughts on this. Technology Transitions If you look at the history of technology development, [...] The post Comments on IBM’s Acquisition of the HRL Laboratories appeared first on Quantum Computing Report.

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To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/comments-on-ibms-acquisition-of-the-hrl-laboratories/)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Digital Catapult and NQCC Select 11 Organisations for Quantum Technology Access Programme]]></title>
            <link>https://quantumcomputinginfo.com/blog/digital-catapult-and-nqcc-select-11-organisations-for-quantum-technology-access-programme-b805c7</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/digital-catapult-and-nqcc-select-11-organisations-for-quantum-technology-access-programme-b805c7</guid>
            <pubDate>Fri, 24 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Digital Catapult has today welcomed eleven leading organisations to the third cohort of its Quantum Technology Access Programme (Q...]]></description>
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# Digital Catapult and NQCC Select 11 Organisations for Quantum Technology Access Programme

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/24/digital-catapult-nqcc-quantum-technology-access-programme/) on July 24, 2026.

Insider Brief Press release – Digital Catapult has today welcomed eleven leading organisations to the third cohort of its Quantum Technology Access Programme (QTAP), delivered in collaboration with the National Quantum Computing Centre’s (NQCC) SparQ programme. Designed to accelerate the practical application of quantum innovation in industry, the cohort includes NatWest, the Rail Safety and […]

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To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/24/digital-catapult-nqcc-quantum-technology-access-programme/)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Long-lived ytterbium states could sharpen quantum computing and atomic clocks]]></title>
            <link>https://quantumcomputinginfo.com/blog/long-lived-ytterbium-states-could-sharpen-quantum-computing-and-atomic-clocks-cc4369</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/long-lived-ytterbium-states-could-sharpen-quantum-computing-and-atomic-clocks-cc4369</guid>
            <pubDate>Fri, 24 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Researchers from the University of Amsterdam and the University of New South Wales have answered a question that has been around for decades: whether ions of th...]]></description>
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# Long-lived ytterbium states could sharpen quantum computing and atomic clocks

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-ytterbium-states-sharpen-quantum-atomic.html) on July 24, 2026.

Researchers from the University of Amsterdam and the University of New South Wales have answered a question that has been around for decades: whether ions of the metal ytterbium can enter certain long-lived, nearly stable states and, if so, for how long. The measured long-lived states may find applications in quantum computers and atomic clocks.

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To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-ytterbium-states-sharpen-quantum-atomic.html)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Photonic Quantum Technology Companies in 2026]]></title>
            <link>https://quantumcomputinginfo.com/blog/photonic-quantum-technology-companies-in-2026-06a340</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/photonic-quantum-technology-companies-in-2026-06a340</guid>
            <pubDate>Fri, 24 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Most quantum computers rely on extreme cooling to keep their qubits stable. Photonic quantum computers take a different route by using photons, pa...]]></description>
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# Photonic Quantum Technology Companies in 2026

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/24/9-quantum-computing-companies-working-with-photonic-technology/) on July 24, 2026.

Insider Brief Most quantum computers rely on extreme cooling to keep their qubits stable. Photonic quantum computers take a different route by using photons, particles of light, as the carriers of quantum information. This allows the processors themselves to operate at room temperature and connects the technology with existing optical infrastructure used in communications. The […]

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To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/24/9-quantum-computing-companies-working-with-photonic-technology/)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Quantum Materials Engineering – The Atoms Powering Quantum Computing]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-materials-engineering-the-atoms-powering-quantum-computing-7a2a39</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-materials-engineering-the-atoms-powering-quantum-computing-7a2a39</guid>
            <pubDate>Fri, 24 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Quantum computing is often portrayed as a race to build better qubits, but this is just part of the bigger challenge. Beneath every qubit is an en...]]></description>
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# Quantum Materials Engineering – The Atoms Powering Quantum Computing

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/24/quantum-materials-engineering-the-atoms-powering-quantum-computing/) on July 24, 2026.

Insider Brief Quantum computing is often portrayed as a race to build better qubits, but this is just part of the bigger challenge. Beneath every qubit is an endeavor to find the right material that can make quantum behavior possible. Researchers are exploring superconducting metals, ultra-pure silicon, engineered crystal defects, and topological compounds. They seek […]

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To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/24/quantum-materials-engineering-the-atoms-powering-quantum-computing/)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Quantum Zeno effect could freeze computations as qubit systems scale up]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-zeno-effect-could-freeze-computations-as-qubit-systems-scale-up-60ea11</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-zeno-effect-could-freeze-computations-as-qubit-systems-scale-up-60ea11</guid>
            <pubDate>Fri, 24 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[The promise of quantum computing is to solve complex problems faster and more energy-efficiently than today's supercomputers—from optimizing logistics to simula...]]></description>
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# Quantum Zeno effect could freeze computations as qubit systems scale up

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-quantum-zeno-effect-qubit-scale.html) on July 24, 2026.

The promise of quantum computing is to solve complex problems faster and more energy-efficiently than today's supercomputers—from optimizing logistics to simulating molecules. This goal is coming within reach as the number of qubits—the computational units of quantum computing—increases.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-quantum-zeno-effect-qubit-scale.html)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[Rigetti Computing to Report Second Quarter 2026 Financial Results on August 6]]></title>
            <link>https://quantumcomputinginfo.com/blog/rigetti-computing-to-report-second-quarter-2026-financial-results-on-august-6-a51c81</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/rigetti-computing-to-report-second-quarter-2026-financial-results-on-august-6-a51c81</guid>
            <pubDate>Fri, 24 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Rigetti Computing, Inc. (“Rigetti” or the “Company”) (Nasdaq: RGTI), a pioneer in hybrid quantum-classical computing, announced to...]]></description>
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# Rigetti Computing to Report Second Quarter 2026 Financial Results on August 6

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/24/rigetti-computing-to-report-second-quarter-2026-financial-results-and-host-conference-call-on-august-6-2026/) on July 24, 2026.

Insider Brief Press release – Rigetti Computing, Inc. (“Rigetti” or the “Company”) (Nasdaq: RGTI), a pioneer in hybrid quantum-classical computing, announced today that it will release second quarter 2026 results on Thursday, August 6, 2026, after market close. The Company will host a conference call to discuss its financial results and provide an update on […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/24/rigetti-computing-to-report-second-quarter-2026-financial-results-and-host-conference-call-on-august-6-2026/)
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            <author>Quantum Editorial Team</author>
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            <title><![CDATA[SKKU-led Team Identifies ‘Zinc Oxide Spin Qubit’ — A Semiconductor-Based Quantum Technology]]></title>
            <link>https://quantumcomputinginfo.com/blog/skku-led-team-identifies-zinc-oxide-spin-qubit-a-semiconductor-based-quantum-technology-b1c533</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/skku-led-team-identifies-zinc-oxide-spin-qubit-a-semiconductor-based-quantum-technology-b1c533</guid>
            <pubDate>Fri, 24 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief PRESS RELEASE — A research team led by SKKU Professor Hosung Seo of the Department of Quantum Information Engineering and the SKKU Advanced Instit...]]></description>
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# SKKU-led Team Identifies ‘Zinc Oxide Spin Qubit’ — A Semiconductor-Based Quantum Technology

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/24/skku-led-team-identifies-zinc-oxide-spin-qubit-a-semiconductor-based-quantum-technology/) on July 24, 2026.

Insider Brief PRESS RELEASE — A research team led by SKKU Professor Hosung Seo of the Department of Quantum Information Engineering and the SKKU Advanced Institute of Nanotechnology, working with the University of Wisconsin–Madison and the University of Washington, has identified—for the first time—an atomic defect structure in the zinc oxide (ZnO) semiconductor with outstanding […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/24/skku-led-team-identifies-zinc-oxide-spin-qubit-a-semiconductor-based-quantum-technology/)
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            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Terra Quantum and Apex.AI Integrate NIST Post-Quantum Cryptography Into Robotics Software]]></title>
            <link>https://quantumcomputinginfo.com/blog/terra-quantum-and-apexai-integrate-nist-post-quantum-cryptography-into-robotics-software-621ab6</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/terra-quantum-and-apexai-integrate-nist-post-quantum-cryptography-into-robotics-software-621ab6</guid>
            <pubDate>Fri, 24 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Terra Quantum, a global leader in quantum technologies, and Apex.AI, a leading provider of safe and secure software for software-d...]]></description>
            <content:encoded><![CDATA[
# Terra Quantum and Apex.AI Integrate NIST Post-Quantum Cryptography Into Robotics Software

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/24/terra-quantum-apex-ai-post-quantum-cryptography/) on July 24, 2026.

Insider Brief Press release – Terra Quantum, a global leader in quantum technologies, and Apex.AI, a leading provider of safe and secure software for software-defined vehicles and intelligent machines, today announced the successful implementation of NIST-standardized post-quantum cryptography (PQC) for secure communication between an Apex.AI-based robotic software environment and a cloud-based control system. The collaboration […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/24/terra-quantum-apex-ai-post-quantum-cryptography/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[WISER and E.ON Advance Energy Demand Forecasting with Quantum Machine Learning]]></title>
            <link>https://quantumcomputinginfo.com/blog/wiser-and-eon-advance-energy-demand-forecasting-with-quantum-machine-learning-947560</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/wiser-and-eon-advance-energy-demand-forecasting-with-quantum-machine-learning-947560</guid>
            <pubDate>Fri, 24 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – The Washington Institute for STEM, Entrepreneurship and Research (WISER) announces the successful completion of a research collabo...]]></description>
            <content:encoded><![CDATA[
# WISER and E.ON Advance Energy Demand Forecasting with Quantum Machine Learning

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/24/wiser-eon-quantum-machine-learning-energy-forecasting/) on July 24, 2026.

Insider Brief Press release – The Washington Institute for STEM, Entrepreneurship and Research (WISER) announces the successful completion of a research collaboration with E.ON on energy demand forecasting using quantum machine learning. The joint project, published on arXiv, explores two hybrid quantum-classical approaches for forecasting correlated electricity consumption time series, Kernelized Quantum Reservoir Computing with Repeated […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/24/wiser-eon-quantum-machine-learning-energy-forecasting/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[World's first 'zinc oxide spin qubit' could advance scalable quantum devices]]></title>
            <link>https://quantumcomputinginfo.com/blog/worlds-first-zinc-oxide-spin-qubit-could-advance-scalable-quantum-devices-767f78</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/worlds-first-zinc-oxide-spin-qubit-could-advance-scalable-quantum-devices-767f78</guid>
            <pubDate>Fri, 24 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[A research team led by SKKU professor Hosung Seo of the Department of Quantum Information Engineering and the SKKU Advanced Institute of Nanotechnology, working...]]></description>
            <content:encoded><![CDATA[
# World's first 'zinc oxide spin qubit' could advance scalable quantum devices

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-world-zinc-oxide-qubit-advance.html) on July 24, 2026.

A research team led by SKKU professor Hosung Seo of the Department of Quantum Information Engineering and the SKKU Advanced Institute of Nanotechnology, working with the University of Wisconsin–Madison and the University of Washington, has identified—for the first time—an atomic defect structure in the zinc oxide (ZnO) semiconductor with outstanding properties for use as a "spin qubit," a core building block of future quantum computers, quantum communications and quantum sensors.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-world-zinc-oxide-qubit-advance.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Autonomization of Quantum Systems and the Emergence of the Work Operator]]></title>
            <link>https://quantumcomputinginfo.com/blog/autonomization-of-quantum-systems-and-the-emergence-of-the-work-operator-49b891</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/autonomization-of-quantum-systems-and-the-emergence-of-the-work-operator-49b891</guid>
            <pubDate>Fri, 24 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.20602v1 Announce Type: new Abstract: Estimation of work at the quantum scale remains a central challenge in quantum thermodynamics. Canonical approac...]]></description>
            <content:encoded><![CDATA[
# Autonomization of Quantum Systems and the Emergence of the Work Operator

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.20602) on July 24, 2026.

arXiv:2607.20602v1 Announce Type: new Abstract: Estimation of work at the quantum scale remains a central challenge in quantum thermodynamics. Canonical approaches have a fundamental drawback: they assume classical control of the quantum system, as implicit in a time-dependent Hamiltonian. Yet the energetic cost of implementing this control is omitted and can exceed the system's energy scale by orders of magnitude, calling into question the operational significance of work values. We address this by autonomizing the controlled energy transfer, embedding the driven dynamics into an energy-conserving evolution on a larger quantum system. Work is then unambiguously identified with the energy transferred between the two systems, singling out a unique observable on the driven system: the work o...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.20602)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Enabling Neutral Atom Integration: Redesigning Device Models for Universal Quantum Ecosystems]]></title>
            <link>https://quantumcomputinginfo.com/blog/enabling-neutral-atom-integration-redesigning-device-models-for-universal-quantum-ecosystems-2ebf1a</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/enabling-neutral-atom-integration-redesigning-device-models-for-universal-quantum-ecosystems-2ebf1a</guid>
            <pubDate>Fri, 24 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.20616v1 Announce Type: new Abstract: Quantum computing is transitioning from an academic idea to a practical technology, driven by recent hardware ad...]]></description>
            <content:encoded><![CDATA[
# Enabling Neutral Atom Integration: Redesigning Device Models for Universal Quantum Ecosystems

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.20616) on July 24, 2026.

arXiv:2607.20616v1 Announce Type: new Abstract: Quantum computing is transitioning from an academic idea to a practical technology, driven by recent hardware advancements and clear paths toward real-world applications. Universal quantum ecosystems (e.g., Qiskit, Cirq, PennyLane) facilitate this transition by providing a consistent interface to diverse quantum devices, abstracting hardware-specific details through a device model that captures each device's computational capabilities. However, these device models have historically been shaped by superconducting hardware, assuming static qubit positions and fixed coupling maps. This prevents them from representing the unique computational capabilities of emerging technologies such as neutral atoms, which feature dynamic qubit rearrangement an...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.20616)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Learning the closest Slater determinant]]></title>
            <link>https://quantumcomputinginfo.com/blog/learning-the-closest-slater-determinant-2c9203</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/learning-the-closest-slater-determinant-2c9203</guid>
            <pubDate>Fri, 24 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.20623v1 Announce Type: new Abstract: Learning compact, interpretable descriptions of quantum many-body states is an important task in quantum science...]]></description>
            <content:encoded><![CDATA[
# Learning the closest Slater determinant

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.20623) on July 24, 2026.

arXiv:2607.20623v1 Announce Type: new Abstract: Learning compact, interpretable descriptions of quantum many-body states is an important task in quantum science. We study the task of learning the Slater determinant with maximum fidelity to an arbitrary fermionic many-body state, with motivation from both Hartree-Fock methods and agnostic tomography. Given an $n$-fermion wavefunction built from $m$ fermionic modes, we provide classical and quantum algorithms returning a Slater determinant with fidelity within $\varepsilon$ of maximal in time $m^\{\text\{poly\}(n,1/\varepsilon)\}$. We prove matching hardness lower bounds, assuming standard complexity conjectures, along some parameter axes. Given access to quantum copies, we prove this can be accomplished with $\text\{poly\}(m,n,1/\varepsilon...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.20623)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Machine-Learned Compact Subspace Generation for Quantum Selected Configuration Interaction within Density Matrix Embedding Framework]]></title>
            <link>https://quantumcomputinginfo.com/blog/machine-learned-compact-subspace-generation-for-quantum-selected-configuration-interaction-within-density-matrix-embedding-framework-1a4ba3</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/machine-learned-compact-subspace-generation-for-quantum-selected-configuration-interaction-within-density-matrix-embedding-framework-1a4ba3</guid>
            <pubDate>Fri, 24 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.20585v1 Announce Type: new Abstract: Sample-based Quantum Diagonalization (SQD), an extension of Quantum Selected Configuration Interaction (QSCI), h...]]></description>
            <content:encoded><![CDATA[
# Machine-Learned Compact Subspace Generation for Quantum Selected Configuration Interaction within Density Matrix Embedding Framework

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.20585) on July 24, 2026.

arXiv:2607.20585v1 Announce Type: new Abstract: Sample-based Quantum Diagonalization (SQD), an extension of Quantum Selected Configuration Interaction (QSCI), has emerged as a promising hybrid quantum-classical paradigm for computing molecular ground state energies. By leveraging quantum sampling instead of variational optimization, QSCI avoids barren plateaus and enables direct reconstruction of correlated electronic wavefunctions. However, existing configuration recovery techniques primarily enforce symmetry constraints without guaranteeing optimal selection of the most physically relevant configurations, often leading to unnecessarily large subspaces and increased classical diagonalization costs. In this work, we introduce a machine-learned compact subspace generation protocol based on ...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.20585)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Perturbatively Stable Self-Correcting Classical Memory from Gauge Averaging]]></title>
            <link>https://quantumcomputinginfo.com/blog/perturbatively-stable-self-correcting-classical-memory-from-gauge-averaging-d98cdd</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/perturbatively-stable-self-correcting-classical-memory-from-gauge-averaging-d98cdd</guid>
            <pubDate>Fri, 24 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.20605v1 Announce Type: new Abstract: We show that the self-correcting memory in 3d Wegner gauge theory is stable to arbitrary small enough perturbati...]]></description>
            <content:encoded><![CDATA[
# Perturbatively Stable Self-Correcting Classical Memory from Gauge Averaging

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.20605) on July 24, 2026.

arXiv:2607.20605v1 Announce Type: new Abstract: We show that the self-correcting memory in 3d Wegner gauge theory is stable to arbitrary small enough perturbations of the Hamiltonian. Our proof relies on a new method we dub ``gauge averaging'', which gives conditions under which explicitly broken gauge symmetries are effectively restored by fluctuations. These conditions show that the self-correcting memory phase is fluctuation stabilized, with its robustness to perturbations increasing with increasing temperature, up to some $T_c > 0$....

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.20605)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[D-Wave Quantum to Report Second Quarter 2026 Financial Results on August 6]]></title>
            <link>https://quantumcomputinginfo.com/blog/d-wave-quantum-to-report-second-quarter-2026-financial-results-on-august-6-9af30f</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/d-wave-quantum-to-report-second-quarter-2026-financial-results-on-august-6-9af30f</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – D-Wave Quantum Inc. (NYSE: QBTS) (“D-Wave” or the “Company”), the only dual-platform quantum computing company providing both anne...]]></description>
            <content:encoded><![CDATA[
# D-Wave Quantum to Report Second Quarter 2026 Financial Results on August 6

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/23/d-wave-quantum-to-report-second-quarter-2026-financial-results-on-august-6-2026/) on July 23, 2026.

Insider Brief Press release – D-Wave Quantum Inc. (NYSE: QBTS) (“D-Wave” or the “Company”), the only dual-platform quantum computing company providing both annealing and gate-model systems, software and services, today announced it will release its financial results for the second quarter of 2026 ended June 30, 2026 on Thursday, August 6, 2026 before market open. […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/23/d-wave-quantum-to-report-second-quarter-2026-financial-results-on-august-6-2026/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Engineers observe quantum heat waves at room temperature]]></title>
            <link>https://quantumcomputinginfo.com/blog/engineers-observe-quantum-heat-waves-at-room-temperature-22fa1f</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/engineers-observe-quantum-heat-waves-at-room-temperature-22fa1f</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Efficient heat management in solids is key to advancing the next generation of electronics. However, wave-like heat movement—known as phonon focusing—had been o...]]></description>
            <content:encoded><![CDATA[
# Engineers observe quantum heat waves at room temperature

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-quantum-room-temperature.html) on July 23, 2026.

Efficient heat management in solids is key to advancing the next generation of electronics. However, wave-like heat movement—known as phonon focusing—had been observed only at extremely low, or cryogenic, temperatures, limiting its study and practical use.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-quantum-room-temperature.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[From one frontier to another: The quantum revolution]]></title>
            <link>https://quantumcomputinginfo.com/blog/from-one-frontier-to-another-the-quantum-revolution-800f6e</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/from-one-frontier-to-another-the-quantum-revolution-800f6e</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Manchester's quantum researchers are building on the Ferranti Mark I legacy, using ultra-pure silicon and single atoms to move quantum computing closer to real-...]]></description>
            <content:encoded><![CDATA[
# From one frontier to another: The quantum revolution

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-frontier-quantum-revolution.html) on July 23, 2026.

Manchester's quantum researchers are building on the Ferranti Mark I legacy, using ultra-pure silicon and single atoms to move quantum computing closer to real-world impact.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-frontier-quantum-revolution.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Galaxy Digital Launches $5 Million Bitcoin Quantum Readiness Initiative]]></title>
            <link>https://quantumcomputinginfo.com/blog/galaxy-digital-launches-5-million-bitcoin-quantum-readiness-initiative-902b5c</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/galaxy-digital-launches-5-million-bitcoin-quantum-readiness-initiative-902b5c</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Digital asset and data center infrastructure firm Galaxy Digital Inc. (Nasdaq: GLXY) has announced the launch of the Galaxy Bitcoin Quantum Readiness Initiative...]]></description>
            <content:encoded><![CDATA[
# Galaxy Digital Launches $5 Million Bitcoin Quantum Readiness Initiative

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/galaxy-digital-launches-5-million-bitcoin-quantum-readiness-initiative/) on July 23, 2026.

Digital asset and data center infrastructure firm Galaxy Digital Inc. (Nasdaq: GLXY) has announced the launch of the Galaxy Bitcoin Quantum Readiness Initiative. The multi-pillar program is designed to prepare the Bitcoin network for long-term security threats posed by advancements in quantum computing. The program focuses on bridging the gap between quantum physics research and [...] The post Galaxy Digital Launches $5 Million Bitcoin Quantum Readiness Initiative appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/galaxy-digital-launches-5-million-bitcoin-quantum-readiness-initiative/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Hewlett Foundation Launches $100M Initiative Targeting AI, Biotechnology, and Quantum Security]]></title>
            <link>https://quantumcomputinginfo.com/blog/hewlett-foundation-launches-100m-initiative-targeting-ai-biotechnology-and-quantum-security-1b545e</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/hewlett-foundation-launches-100m-initiative-targeting-ai-biotechnology-and-quantum-security-1b545e</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[The William and Flora Hewlett Foundation has announced a five-year, $100 million grantmaking initiative focused on the policy, security, and governance challeng...]]></description>
            <content:encoded><![CDATA[
# Hewlett Foundation Launches $100M Initiative Targeting AI, Biotechnology, and Quantum Security

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/hewlett-foundation-launches-100m-initiative-targeting-ai-biotechnology-and-quantum-security/) on July 23, 2026.

The William and Flora Hewlett Foundation has announced a five-year, $100 million grantmaking initiative focused on the policy, security, and governance challenges of fast-moving emerging technologies. Announced at the Aspen Security Forum, the Emerging Technology and Security Initiative will allocate $20 million annually through 2031 to civil society organizations, universities, think tanks, and policy research [...] The post Hewlett Foundation Launches $100M Initiative Targeting AI, Biotechnology, and Quantum Security appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/hewlett-foundation-launches-100m-initiative-targeting-ai-biotechnology-and-quantum-security/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Hitachi, Intel and AIST Launch Silicon Quantum Computing Project Backed by Japanese Government]]></title>
            <link>https://quantumcomputinginfo.com/blog/hitachi-intel-and-aist-launch-silicon-quantum-computing-project-backed-by-japanese-government-735b5d</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/hitachi-intel-and-aist-launch-silicon-quantum-computing-project-backed-by-japanese-government-735b5d</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Hitachi has launched a government-backed research effort with Intel K.K. and Japan‘s National Institute of Advanced Industrial Science and Technol...]]></description>
            <content:encoded><![CDATA[
# Hitachi, Intel and AIST Launch Silicon Quantum Computing Project Backed by Japanese Government

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/23/hitachi-intel-and-aist-launch-silicon-quantum-computing-project-backed-by-japanese-government/) on July 23, 2026.

Insider Brief Hitachi has launched a government-backed research effort with Intel K.K. and Japan‘s National Institute of Advanced Industrial Science and Technology, or AIST, to develop silicon-based quantum computing technologies aimed at moving the field from laboratory research toward industrial deployment. According to a Hitachi press release, the company has been selected by Japan‘s New […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/23/hitachi-intel-and-aist-launch-silicon-quantum-computing-project-backed-by-japanese-government/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[IBM to Acquire HRL Laboratories to Expand Quantum Computing Research]]></title>
            <link>https://quantumcomputinginfo.com/blog/ibm-to-acquire-hrl-laboratories-to-expand-quantum-computing-research-2fae3e</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ibm-to-acquire-hrl-laboratories-to-expand-quantum-computing-research-2fae3e</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – IBM (NYSE: IBM) today announced it has signed a definitive agreement to acquire HRL Laboratories, LLC (HRL), a flagship research a...]]></description>
            <content:encoded><![CDATA[
# IBM to Acquire HRL Laboratories to Expand Quantum Computing Research

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/23/ibm-to-acquire-hrl-laboratories-to-power-the-future-of-quantum/) on July 23, 2026.

Insider Brief Press release – IBM (NYSE: IBM) today announced it has signed a definitive agreement to acquire HRL Laboratories, LLC (HRL), a flagship research and development institution. HRL is a private company jointly owned by Boeing and General Motors. Both Boeing and GM will continue to partner with IBM on quantum applications and advanced technology […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/23/ibm-to-acquire-hrl-laboratories-to-power-the-future-of-quantum/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[IBM to Acquire HRL Laboratories to Expand Quantum Roadmap with Silicon-Spin Qubits]]></title>
            <link>https://quantumcomputinginfo.com/blog/ibm-to-acquire-hrl-laboratories-to-expand-quantum-roadmap-with-silicon-spin-qubits-5239d7</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ibm-to-acquire-hrl-laboratories-to-expand-quantum-roadmap-with-silicon-spin-qubits-5239d7</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[IBM (NYSE: IBM) has signed a definitive agreement to acquire HRL Laboratories, LLC (HRL), the Malibu-based research and development institution jointly owned by...]]></description>
            <content:encoded><![CDATA[
# IBM to Acquire HRL Laboratories to Expand Quantum Roadmap with Silicon-Spin Qubits

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/ibm-to-acquire-hrl-laboratories-to-expand-quantum-roadmap-with-silicon-spin-qubits/) on July 23, 2026.

IBM (NYSE: IBM) has signed a definitive agreement to acquire HRL Laboratories, LLC (HRL), the Malibu-based research and development institution jointly owned by Boeing and General Motors. The acquisition expands IBM’s quantum hardware strategy, adding HRL’s expertise in silicon-spin qubits alongside its core superconducting qubit program. Following the transaction, both Boeing and GM will continue [...] The post IBM to Acquire HRL Laboratories to Expand Quantum Roadmap with Silicon-Spin Qubits appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/ibm-to-acquire-hrl-laboratories-to-expand-quantum-roadmap-with-silicon-spin-qubits/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Infleqtion to Deploy Neutral-Atom Quantum Computer at Illinois Quantum Park in 2027]]></title>
            <link>https://quantumcomputinginfo.com/blog/infleqtion-to-deploy-neutral-atom-quantum-computer-at-illinois-quantum-park-in-2027-938403</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/infleqtion-to-deploy-neutral-atom-quantum-computer-at-illinois-quantum-park-in-2027-938403</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Infleqtion (NYSE: INFQ), a global leader in quantum computing and quantum sensing powered by neutral-atom technology, announced it...]]></description>
            <content:encoded><![CDATA[
# Infleqtion to Deploy Neutral-Atom Quantum Computer at Illinois Quantum Park in 2027

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/23/infleqtion-neutral-atom-quantum-computer-illinois/) on July 23, 2026.

Insider Brief Press release – Infleqtion (NYSE: INFQ), a global leader in quantum computing and quantum sensing powered by neutral-atom technology, announced it will deploy its fault-tolerant, neutral-atom quantum computer at the Illinois Quantum & Microelectronics Park (IQMP), with delivery planned in 2027. The company also opened a new Chicago Quantum Innovation Center to expand its […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/23/infleqtion-neutral-atom-quantum-computer-illinois/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Innolume Expands Quantum Dot Manufacturing Platform with Veeco GEN2000 MBE System]]></title>
            <link>https://quantumcomputinginfo.com/blog/innolume-expands-quantum-dot-manufacturing-platform-with-veeco-gen2000-mbe-system-c049fa</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/innolume-expands-quantum-dot-manufacturing-platform-with-veeco-gen2000-mbe-system-c049fa</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[German photonics manufacturer Innolume has ordered a GEN2000® Molecular Beam Epitaxy (MBE) system from Veeco Instruments Inc. (NASDAQ: VECO) to scale production...]]></description>
            <content:encoded><![CDATA[
# Innolume Expands Quantum Dot Manufacturing Platform with Veeco GEN2000 MBE System

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/innolume-expands-quantum-dot-manufacturing-platform-with-veeco-gen2000-mbe-system/) on July 23, 2026.

German photonics manufacturer Innolume has ordered a GEN2000® Molecular Beam Epitaxy (MBE) system from Veeco Instruments Inc. (NASDAQ: VECO) to scale production of gallium arsenide (GaAs)-based quantum dot (QD) lasers. Operating a vertically integrated manufacturing campus in Dortmund, Germany, Innolume is expanding its 6-inch epitaxy and wafer processing capacity to supply QD lasers, comb lasers, [...] The post Innolume Expands Quantum Dot Manufacturing Platform with Veeco GEN2000 MBE System appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/innolume-expands-quantum-dot-manufacturing-platform-with-veeco-gen2000-mbe-system/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[IQMP and Q-STAR Partner to Expand Japan-Illinois Quantum Collaboration]]></title>
            <link>https://quantumcomputinginfo.com/blog/iqmp-and-q-star-partner-to-expand-japan-illinois-quantum-collaboration-8e9ed2</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/iqmp-and-q-star-partner-to-expand-japan-illinois-quantum-collaboration-8e9ed2</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Today, the Illinois Quantum and Microelectronics Park (IQMP) and the Quantum STrategic industry Alliance for Revolution (Q-STAR) a...]]></description>
            <content:encoded><![CDATA[
# IQMP and Q-STAR Partner to Expand Japan-Illinois Quantum Collaboration

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/23/iqmp-q-star-japan-illinois-quantum-collaboration/) on July 23, 2026.

Insider Brief Press release – Today, the Illinois Quantum and Microelectronics Park (IQMP) and the Quantum STrategic industry Alliance for Revolution (Q-STAR) announced a new partnership to strengthen collaboration between Japanese companies and Illinois’ quantum ecosystem. The memorandum of understanding (MOU) between the two organizations builds on Illinois and Japan’s longstanding commitment to advancing the […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/23/iqmp-q-star-japan-illinois-quantum-collaboration/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Keyfactor Revamps Global Partner Program to Accelerate Enterprise Post-Quantum Cryptography Modernization]]></title>
            <link>https://quantumcomputinginfo.com/blog/keyfactor-revamps-global-partner-program-to-accelerate-enterprise-post-quantum-cryptography-modernization-c8816f</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/keyfactor-revamps-global-partner-program-to-accelerate-enterprise-post-quantum-cryptography-modernization-c8816f</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Digital trust and Public Key Infrastructure (PKI) management provider Keyfactor has announced an expansion of its Global Partner Program. The program is designe...]]></description>
            <content:encoded><![CDATA[
# Keyfactor Revamps Global Partner Program to Accelerate Enterprise Post-Quantum Cryptography Modernization

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/keyfactor-revamps-global-partner-program-to-accelerate-enterprise-post-quantum-cryptography-modernization/) on July 23, 2026.

Digital trust and Public Key Infrastructure (PKI) management provider Keyfactor has announced an expansion of its Global Partner Program. The program is designed to equip systems integrators, hyperscaler partners, managed service providers (MSPs), and security advisory firms to help enterprise clients navigate the transition toward Post-Quantum Cryptography (PQC) and manage machine identities generated by artificial [...] The post Keyfactor Revamps Global Partner Program to Accelerate Enterprise Post-Quantum Cryptography Modernization appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/keyfactor-revamps-global-partner-program-to-accelerate-enterprise-post-quantum-cryptography-modernization/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Major Bitcoin Firms Commit $15 Million to Support Bitcoin Security Development]]></title>
            <link>https://quantumcomputinginfo.com/blog/major-bitcoin-firms-commit-15-million-to-support-bitcoin-security-development-7f800c</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/major-bitcoin-firms-commit-15-million-to-support-bitcoin-security-development-7f800c</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – A group of leading financial institutions and Bitcoin companies today announced the formation of the Bitcoin Security Consortium,...]]></description>
            <content:encoded><![CDATA[
# Major Bitcoin Firms Commit $15 Million to Support Bitcoin Security Development

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/23/bitcoin-security-consortium-launches-15-million-funding/) on July 23, 2026.

Insider Brief Press release – A group of leading financial institutions and Bitcoin companies today announced the formation of the Bitcoin Security Consortium, an initiative dedicated to supporting the long-term security and resilience of the Bitcoin network, backed by an aggregate $15 million in member pledges over the next three years. Founding members are Anchorage Digital, ARK Invest, […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/23/bitcoin-security-consortium-launches-15-million-funding/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[MIT projects selected for funding under US Department of Energy’s Genesis Mission]]></title>
            <link>https://quantumcomputinginfo.com/blog/mit-projects-selected-for-funding-under-us-department-of-energys-genesis-mission-324e4b</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/mit-projects-selected-for-funding-under-us-department-of-energys-genesis-mission-324e4b</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Initial research projects advance national priorities across natural resources, manufacturing, nuclear physics, and more....]]></description>
            <content:encoded><![CDATA[
# MIT projects selected for funding under US Department of Energy’s Genesis Mission

> **Source:** Originally published on [MIT News Quantum](https://news.mit.edu/2026/mit-projects-selected-funding-under-doe-genesis-mission-0723) on July 23, 2026.

Initial research projects advance national priorities across natural resources, manufacturing, nuclear physics, and more.

---

To read the full article, visit the original source page:

[Read the full article on MIT News Quantum →](https://news.mit.edu/2026/mit-projects-selected-funding-under-doe-genesis-mission-0723)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Molecular clock transitions tune out the noise in the hunt for new physics]]></title>
            <link>https://quantumcomputinginfo.com/blog/molecular-clock-transitions-tune-out-the-noise-in-the-hunt-for-new-physics-4f54f9</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/molecular-clock-transitions-tune-out-the-noise-in-the-hunt-for-new-physics-4f54f9</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Heavy polar molecules are some of the most sensitive tools physicists have for probing what lies beyond the Standard Model, the theory that describes the partic...]]></description>
            <content:encoded><![CDATA[
# Molecular clock transitions tune out the noise in the hunt for new physics

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-molecular-clock-transitions-tune-noise.html) on July 23, 2026.

Heavy polar molecules are some of the most sensitive tools physicists have for probing what lies beyond the Standard Model, the theory that describes the particles and forces we know about. But turning that sensitivity into precise, trustworthy measurements has long been held back by one stubborn problem: Stray electric and magnetic fields drown out the tiny signals researchers are actually looking for.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-molecular-clock-transitions-tune-noise.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[New White House Science Strategy Points to a Quantum-Style Innovation Model]]></title>
            <link>https://quantumcomputinginfo.com/blog/new-white-house-science-strategy-points-to-a-quantum-style-innovation-model-eb8792</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/new-white-house-science-strategy-points-to-a-quantum-style-innovation-model-eb8792</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief The White House’s new science strategy proposes a different way of organizing American innovation, one that could reshape how the U.S. quantum sec...]]></description>
            <content:encoded><![CDATA[
# New White House Science Strategy Points to a Quantum-Style Innovation Model

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/23/new-white-house-science-strategy-points-to-a-quantum-style-innovation-model/) on July 23, 2026.

Insider Brief The White House’s new science strategy proposes a different way of organizing American innovation, one that could reshape how the U.S. quantum sector develops over the next decade. Yet many of the report’s central recommendations describe an innovation model that parts of the quantum industry have already begun to adopt. One could even […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/23/new-white-house-science-strategy-points-to-a-quantum-style-innovation-model/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Qedma Integrates Quantum Error Mitigation Software with Quantinuum Platform]]></title>
            <link>https://quantumcomputinginfo.com/blog/qedma-integrates-quantum-error-mitigation-software-with-quantinuum-platform-81fea8</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/qedma-integrates-quantum-error-mitigation-software-with-quantinuum-platform-81fea8</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Qedma today announced an integration with Quantinuum’s platform that will allow customers to use its advanced error mitigation on...]]></description>
            <content:encoded><![CDATA[
# Qedma Integrates Quantum Error Mitigation Software with Quantinuum Platform

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/23/qedma-error-mitigation-software-quantinuum-platform/) on July 23, 2026.

Insider Brief Press release – Qedma today announced an integration with Quantinuum’s platform that will allow customers to use its advanced error mitigation on industry-leading quantum computing hardware. Qedma developed this technical integration over the past year as a founding member of the Quantinuum Startup Partner Program. In many applications, Qedma’s Quantum Error Suppression and […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/23/qedma-error-mitigation-software-quantinuum-platform/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantinuum Appoints New Chief Legal Officer and Chief People Officer]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantinuum-appoints-new-chief-legal-officer-and-chief-people-officer-618647</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantinuum-appoints-new-chief-legal-officer-and-chief-people-officer-618647</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Quantinuum, Inc. (NASDAQ:QNT), a leading quantum computing company, today announced the recent appointments of Robin Schulman as C...]]></description>
            <content:encoded><![CDATA[
# Quantinuum Appoints New Chief Legal Officer and Chief People Officer

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/23/quantinuum-appoints-chief-legal-officer-and-chief-people-officer/) on July 23, 2026.

Insider Brief Press release – Quantinuum, Inc. (NASDAQ:QNT), a leading quantum computing company, today announced the recent appointments of Robin Schulman as Chief Legal Officer (CLO) and Company Secretary, effective July 13, 2026, and Rory O’Byrne as Chief People Officer (CPO), effective May 26, 2026. Ms. Schulman and Mr. O’Byrne both report to Quantinuum‘s President […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/23/quantinuum-appoints-chief-legal-officer-and-chief-people-officer/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum Elements Launches Orbit Error Suppression Tool Through IBM Qiskit Platform]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-elements-launches-orbit-error-suppression-tool-through-ibm-qiskit-platform-2b92ec</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-elements-launches-orbit-error-suppression-tool-through-ibm-qiskit-platform-2b92ec</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Quantum Elements, a provider of AI-powered digital twins for quantum computing developers, today announced that Orbit, an advanced...]]></description>
            <content:encoded><![CDATA[
# Quantum Elements Launches Orbit Error Suppression Tool Through IBM Qiskit Platform

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/23/quantum-elements-orbit-error-suppression-tool-qiskit/) on July 23, 2026.

Insider Brief Press release – Quantum Elements, a provider of AI-powered digital twins for quantum computing developers, today announced that Orbit, an advanced quantum error suppression tool, will be available through the IBM Qiskit Functions Catalog. The launch will make Orbit directly accessible to IBM Quantum Network member organizations, giving researchers, developers and enterprise quantum teams a new way to improve […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/23/quantum-elements-orbit-error-suppression-tool-qiskit/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum Newton's cradle set to level up computing]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-newtons-cradle-set-to-level-up-computing-15afcc</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-newtons-cradle-set-to-level-up-computing-15afcc</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Sending quantum information through a chain of qubits, like energy through a Newton's cradle, could be the key to faster operations and take quantum computing t...]]></description>
            <content:encoded><![CDATA[
# Quantum Newton's cradle set to level up computing

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-quantum-newton-cradle.html) on July 23, 2026.

Sending quantum information through a chain of qubits, like energy through a Newton's cradle, could be the key to faster operations and take quantum computing to the next level.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-quantum-newton-cradle.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Rice University Joins DOE Quantum Science Center to Advance Real-Time Quantum Error Correction]]></title>
            <link>https://quantumcomputinginfo.com/blog/rice-university-joins-doe-quantum-science-center-to-advance-real-time-quantum-error-correction-e0ed8e</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/rice-university-joins-doe-quantum-science-center-to-advance-real-time-quantum-error-correction-e0ed8e</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Rice University has officially joined the U.S. Department of Energy’s (DOE) Quantum Science Center (QSC), expanding its footprint in national fault-tolerant qua...]]></description>
            <content:encoded><![CDATA[
# Rice University Joins DOE Quantum Science Center to Advance Real-Time Quantum Error Correction

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/rice-university-joins-doe-quantum-science-center-to-advance-real-time-quantum-error-correction/) on July 23, 2026.

Rice University has officially joined the U.S. Department of Energy’s (DOE) Quantum Science Center (QSC), expanding its footprint in national fault-tolerant quantum computing R&D. Headquartered at Oak Ridge National Laboratory (ORNL), the QSC is one of five National Quantum Information Science Research Centers established under the National Quantum Initiative Act. Led by Tirthak Patel, assistant [...] The post Rice University Joins DOE Quantum Science Center to Advance Real-Time Quantum Error Correction appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/rice-university-joins-doe-quantum-science-center-to-advance-real-time-quantum-error-correction/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Shaking atoms to bring black-hole quantum chaos into the lab]]></title>
            <link>https://quantumcomputinginfo.com/blog/shaking-atoms-to-bring-black-hole-quantum-chaos-into-the-lab-d6ad3f</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/shaking-atoms-to-bring-black-hole-quantum-chaos-into-the-lab-d6ad3f</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Physicists have discovered a surprisingly simple way to reproduce one of the most fascinating models in modern physics—linked to black holes, quantum chaos and...]]></description>
            <content:encoded><![CDATA[
# Shaking atoms to bring black-hole quantum chaos into the lab

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-atoms-black-hole-quantum-chaos.html) on July 23, 2026.

Physicists have discovered a surprisingly simple way to reproduce one of the most fascinating models in modern physics—linked to black holes, quantum chaos and exotic electronic materials—using ultracold atoms trapped in light.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-atoms-black-hole-quantum-chaos.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Simple circuit brings topological insulators closer to practical electrical measurement standards]]></title>
            <link>https://quantumcomputinginfo.com/blog/simple-circuit-brings-topological-insulators-closer-to-practical-electrical-measurement-standards-43855c</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/simple-circuit-brings-topological-insulators-closer-to-practical-electrical-measurement-standards-43855c</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Researchers at the University of Würzburg have succeeded in detecting exceptionally robust electrical transport in a topological insulator. This could lead to n...]]></description>
            <content:encoded><![CDATA[
# Simple circuit brings topological insulators closer to practical electrical measurement standards

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-simple-circuit-topological-insulators-closer.html) on July 23, 2026.

Researchers at the University of Würzburg have succeeded in detecting exceptionally robust electrical transport in a topological insulator. This could lead to new metrological applications. The work is published in the journal Nature Communications.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-simple-circuit-topological-insulators-closer.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Striped or checkered? Magnetic field influences competing electronic patterns in a graphene-like quantum material]]></title>
            <link>https://quantumcomputinginfo.com/blog/striped-or-checkered-magnetic-field-influences-competing-electronic-patterns-in-a-graphene-like-quantum-material-4d0df8</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/striped-or-checkered-magnetic-field-influences-competing-electronic-patterns-in-a-graphene-like-quantum-material-4d0df8</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[In most everyday materials, such as copper, silver and silicon, the behavior of electrons is relatively predictable. In quantum materials, however, electrons ca...]]></description>
            <content:encoded><![CDATA[
# Striped or checkered? Magnetic field influences competing electronic patterns in a graphene-like quantum material

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-striped-checkered-magnetic-field-electronic.html) on July 23, 2026.

In most everyday materials, such as copper, silver and silicon, the behavior of electrons is relatively predictable. In quantum materials, however, electrons can interact in complex ways, giving rise to collective electronic states with remarkable properties. Understanding how these states emerge—and, ultimately, how to control them—is one of the central challenges in quantum materials research.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-striped-checkered-magnetic-field-electronic.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[A unified framework for anomalous boson bunching]]></title>
            <link>https://quantumcomputinginfo.com/blog/a-unified-framework-for-anomalous-boson-bunching-47f0c8</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/a-unified-framework-for-anomalous-boson-bunching-47f0c8</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.19499v1 Announce Type: new Abstract: Anomalous bunching is a paradoxical quantum interferometric phenomenon in which partially distinguishable photon...]]></description>
            <content:encoded><![CDATA[
# A unified framework for anomalous boson bunching

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.19499) on July 23, 2026.

arXiv:2607.19499v1 Announce Type: new Abstract: Anomalous bunching is a paradoxical quantum interferometric phenomenon in which partially distinguishable photons exhibit a higher probability of bunching into two or more modes than fully indistinguishable photons [Nat. Photonics 17, 702 (2023)]. While this effect is directly linked to violations of certain conjectures on matrix permanents, the mechanism underlying the anomaly is not yet fully understood. Here, we show that boson bunching is governed not by internal indistinguishability alone, but by the total indistinguishability of the postselected output state. Total indistinguishability combines the internal degrees of freedom, such as polarization or arrival time, with the spatial degrees of freedom of their wave functions restricted to...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.19499)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Decoder Comparability Across Quantum Software Stacks: Repeated-Round Surface and Digitized-GKP Syndrome Replay]]></title>
            <link>https://quantumcomputinginfo.com/blog/decoder-comparability-across-quantum-software-stacks-repeated-round-surface-and-digitized-gkp-syndrome-replay-00d729</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/decoder-comparability-across-quantum-software-stacks-repeated-round-surface-and-digitized-gkp-syndrome-replay-00d729</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.19446v1 Announce Type: new Abstract: We present a contract-preserving, family-aware comparison of decoder behavior across four syndrome-generation st...]]></description>
            <content:encoded><![CDATA[
# Decoder Comparability Across Quantum Software Stacks: Repeated-Round Surface and Digitized-GKP Syndrome Replay

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.19446) on July 23, 2026.

arXiv:2607.19446v1 Announce Type: new Abstract: We present a contract-preserving, family-aware comparison of decoder behavior across four syndrome-generation stacks (PennyLane, Qiskit, Cirq, and a LiDMaS+ reference) under a fixed replay interface. Request streams from repeated-round surface-code and digitized-GKP circuits are replayed through BP, MWPM, and UF with matched controls. The unified matrix spans 24 cells and achieves line-level integrity: $24\,000$ request lines, $24\,000$ response lines, response ratio $=1.0$ in every cell, zero parse failures, and zero decoder-name mismatches. Fifteen warning-no-syndrome events occur only in GKP-Cirq rows. Within-family ordering is stable in both families ($\mathrm\{BP\}...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.19446)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Hardware-in-the-Loop Syndrome-to-Decoder Validation for Repetition, Surface, CSS-LDPC, and Digitized-GKP Codes]]></title>
            <link>https://quantumcomputinginfo.com/blog/hardware-in-the-loop-syndrome-to-decoder-validation-for-repetition-surface-css-ldpc-and-digitized-gkp-codes-b69039</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/hardware-in-the-loop-syndrome-to-decoder-validation-for-repetition-surface-css-ldpc-and-digitized-gkp-codes-b69039</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.19447v1 Announce Type: new Abstract: Quantum error-correction experiments increasingly require a verified interface between measured syndrome bits an...]]></description>
            <content:encoded><![CDATA[
# Hardware-in-the-Loop Syndrome-to-Decoder Validation for Repetition, Surface, CSS-LDPC, and Digitized-GKP Codes

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.19447) on July 23, 2026.

arXiv:2607.19447v1 Announce Type: new Abstract: Quantum error-correction experiments increasingly require a verified interface between measured syndrome bits and decoder-native correction requests. We report a four-branch syndrome-to-decoder study spanning three IBM gate-model hardware circuits and one PennyLane-backed digitized-GKP model. The hardware branches implement a five-data-qubit repetition code, a distance-five rotated-surface-code Z-check extraction layer, and the Z-check half of the Steane CSS code as a compact CSS-LDPC benchmark. The GKP branch samples finite-squeezed Gaussian-CV q-readout and injected q-shifts, then bins wrapped quadrature coordinates into the same outer surface-code Z-check interface. All cases use 4096 shots per stream, clean and injected streams, LiDMaS+ r...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.19447)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Hybrid LLM-Guided Search for Quantum Reservoir Architecture Design]]></title>
            <link>https://quantumcomputinginfo.com/blog/hybrid-llm-guided-search-for-quantum-reservoir-architecture-design-a853c8</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/hybrid-llm-guided-search-for-quantum-reservoir-architecture-design-a853c8</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.19506v1 Announce Type: new Abstract: Quantum reservoir computing (QRC) uses fixed quantum dynamics as a high-dimensional temporal feature map and tra...]]></description>
            <content:encoded><![CDATA[
# Hybrid LLM-Guided Search for Quantum Reservoir Architecture Design

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.19506) on July 23, 2026.

arXiv:2607.19506v1 Announce Type: new Abstract: Quantum reservoir computing (QRC) uses fixed quantum dynamics as a high-dimensional temporal feature map and trains only a lightweight classical readout. QRC is attractive for near-term quantum machine learning, but its performance depends strongly on architecture choices such as input encoding, reservoir depth, entanglement topology, measurement features, state-reset policy, feature construction, and readout regularization. We introduce \method, a simulator-based benchmark that formulates QRC design as constrained black-box architecture search and evaluates whether large language models can act as proposal controllers for this search problem. The benchmark compares five policies under identical evaluation budgets: random search, evolutionary...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.19506)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum resonance-enhanced performance of quantum battery]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-resonance-enhanced-performance-of-quantum-battery-28aaa1</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-resonance-enhanced-performance-of-quantum-battery-28aaa1</guid>
            <pubDate>Thu, 23 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.19477v1 Announce Type: new Abstract: Quantum resonance arising whenever the ratio of the intrinsic system frequency to the driving frequency becomes...]]></description>
            <content:encoded><![CDATA[
# Quantum resonance-enhanced performance of quantum battery

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.19477) on July 23, 2026.

arXiv:2607.19477v1 Announce Type: new Abstract: Quantum resonance arising whenever the ratio of the intrinsic system frequency to the driving frequency becomes a rational number has been demonstrated to generate super-linear entanglement, enhance transport, quantum metrology performance and communication. Here, we demonstrate that quantum resonance can also serve as a powerful resource for quantum batteries. We model the batteries as free rotors charged via a kicked protocol. When the individual batteries are at resonance, we show both analytically and numerically that charging power increases linearly with time while efficiency (defined as the fraction of stored energy that can be extracted) remains near unity despite strong entanglement generation. Furthermore, we demonstrate that this e...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.19477)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[3 Google updates from Galaxy Unpacked 2026]]></title>
            <link>https://quantumcomputinginfo.com/blog/3-google-updates-from-galaxy-unpacked-2026-a9dfe6</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/3-google-updates-from-galaxy-unpacked-2026-a9dfe6</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[We shared how Samsung users can boost productivity and get time back on new foldables, watches, and glasses coming soon....]]></description>
            <content:encoded><![CDATA[
# 3 Google updates from Galaxy Unpacked 2026

> **Source:** Originally published on [Google AI Blog](https://blog.google/products-and-platforms/platforms/android/galaxy-unpacked-2026/) on July 22, 2026.

We shared how Samsung users can boost productivity and get time back on new foldables, watches, and glasses coming soon.

---

To read the full article, visit the original source page:

[Read the full article on Google AI Blog →](https://blog.google/products-and-platforms/platforms/android/galaxy-unpacked-2026/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Detecting the body's magnetic fields with a low-power Ramsey-based magnetometer]]></title>
            <link>https://quantumcomputinginfo.com/blog/detecting-the-bodys-magnetic-fields-with-a-low-power-ramsey-based-magnetometer-90eccc</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/detecting-the-bodys-magnetic-fields-with-a-low-power-ramsey-based-magnetometer-90eccc</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Our bodies generate extremely weak magnetic fields as electric currents flow through the heart, brain and other tissues. These signals are used in magnetocardio...]]></description>
            <content:encoded><![CDATA[
# Detecting the body's magnetic fields with a low-power Ramsey-based magnetometer

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-body-magnetic-fields-power-ramsey.html) on July 22, 2026.

Our bodies generate extremely weak magnetic fields as electric currents flow through the heart, brain and other tissues. These signals are used in magnetocardiography and magnetoencephalography to assess heart function and brain activity, respectively. These fields can be detected at room temperature using diamond sensors containing nitrogen-vacancy (NV) centers, in which a carbon atom is replaced by a nitrogen atom adjacent to an empty lattice site.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-body-magnetic-fields-power-ramsey.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Guest Post:  What a High School Student Found When He Stress-Tested a Quantum Benchmark]]></title>
            <link>https://quantumcomputinginfo.com/blog/guest-post-what-a-high-school-student-found-when-he-stress-tested-a-quantum-benchmark-3d2472</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/guest-post-what-a-high-school-student-found-when-he-stress-tested-a-quantum-benchmark-3d2472</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Guest Post By Jithesh Mithra, Independent Researcher, Jacksonville, Florida Here is a result that should not happen. Take a quantum error correction (QEC) code,...]]></description>
            <content:encoded><![CDATA[
# Guest Post:  What a High School Student Found When He Stress-Tested a Quantum Benchmark

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/22/guest-post-what-a-high-school-student-found-when-he-stress-tested-a-quantum-benchmark/) on July 22, 2026.

Guest Post By Jithesh Mithra, Independent Researcher, Jacksonville, Florida Here is a result that should not happen. Take a quantum error correction (QEC) code, fix the physical error rate, and ask a simple question. Does adding more qubits make it work better? Under a single noise assumption, the answer would be yes. However under a […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/22/guest-post-what-a-high-school-student-found-when-he-stress-tested-a-quantum-benchmark/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Hewlett Foundation Launches $100 Million Initiative Supporting Quantum and Emerging Technology Security]]></title>
            <link>https://quantumcomputinginfo.com/blog/hewlett-foundation-launches-100-million-initiative-supporting-quantum-and-emerging-technology-security-c77324</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/hewlett-foundation-launches-100-million-initiative-supporting-quantum-and-emerging-technology-security-c77324</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – The William and Flora Hewlett Foundation announced a five-year, $100 million grantmaking initiative intended to help foster innova...]]></description>
            <content:encoded><![CDATA[
# Hewlett Foundation Launches $100 Million Initiative Supporting Quantum and Emerging Technology Security

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/22/hewlett-foundation-100-million-quantum-security-initiative/) on July 22, 2026.

Insider Brief Press release – The William and Flora Hewlett Foundation announced a five-year, $100 million grantmaking initiative intended to help foster innovation while supporting the safe development of emerging technologies. Unveiled at the Aspen Security Forum, the Emerging Technology and Security Initiative addresses critical challenges in artificial intelligence, biotechnology, and quantum computing to help […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/22/hewlett-foundation-100-million-quantum-security-initiative/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Hitachi Partners with Intel and AIST on $NEDO Project to Scale Silicon Quantum Processors]]></title>
            <link>https://quantumcomputinginfo.com/blog/hitachi-partners-with-intel-and-aist-on-nedo-project-to-scale-silicon-quantum-processors-a1027d</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/hitachi-partners-with-intel-and-aist-on-nedo-project-to-scale-silicon-quantum-processors-a1027d</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Japanese industrial technology giant Hitachi, Ltd. (TSE: 6501) has been selected by Japan’s New Energy and Industrial Technology Development Organization (NEDO)...]]></description>
            <content:encoded><![CDATA[
# Hitachi Partners with Intel and AIST on $NEDO Project to Scale Silicon Quantum Processors

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/hitachi-partners-with-intel-and-aist-on-nedo-project-to-scale-silicon-quantum-processors/) on July 22, 2026.

Japanese industrial technology giant Hitachi, Ltd. (TSE: 6501) has been selected by Japan’s New Energy and Industrial Technology Development Organization (NEDO) to lead a major government-backed R&D initiative aimed at transitioning silicon spin-qubit quantum computers from academic demonstrations to mass-manufacturable industrial infrastructure. The project—titled "Accelerating the Development and Demonstration of Next-Generation Quantum Computers to Solve [...] The post Hitachi Partners with Intel and AIST on $NEDO Project to Scale Silicon Quantum Processors appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/hitachi-partners-with-intel-and-aist-on-nedo-project-to-scale-silicon-quantum-processors/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Infleqtion Receives Three DOE Genesis Mission Projects for Quantum Computing and Sensing Research]]></title>
            <link>https://quantumcomputinginfo.com/blog/infleqtion-receives-three-doe-genesis-mission-projects-for-quantum-computing-and-sensing-research-1d2bf9</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/infleqtion-receives-three-doe-genesis-mission-projects-for-quantum-computing-and-sensing-research-1d2bf9</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Infleqtion (NYSE: INFQ), a global leader in quantum computing and quantum sensing powered by neutral-atom technology, announced it...]]></description>
            <content:encoded><![CDATA[
# Infleqtion Receives Three DOE Genesis Mission Projects for Quantum Computing and Sensing Research

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/22/infleqtion-secures-three-genesis-mission-projects-from-us-department-of-energy/) on July 22, 2026.

Insider Brief Press release – Infleqtion (NYSE: INFQ), a global leader in quantum computing and quantum sensing powered by neutral-atom technology, announced it has been awarded three projects to accelerate American scientific research and innovation by the U.S. Department of Energy (DOE) for the Genesis Mission. The projects include collaborations with Argonne National Laboratory, Brookhaven National Laboratory, […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/22/infleqtion-secures-three-genesis-mission-projects-from-us-department-of-energy/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Keyfactor Expands Partner Program for Post-Quantum Cryptography Readiness]]></title>
            <link>https://quantumcomputinginfo.com/blog/keyfactor-expands-partner-program-for-post-quantum-cryptography-readiness-993621</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/keyfactor-expands-partner-program-for-post-quantum-cryptography-readiness-993621</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Keyfactor, the leader in trust infrastructure for AI and machines, today announced a major expansion of its Global Partner Program...]]></description>
            <content:encoded><![CDATA[
# Keyfactor Expands Partner Program for Post-Quantum Cryptography Readiness

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/22/keyfactor-expands-partner-program-for-post-quantum-security/) on July 22, 2026.

Insider Brief Press release – Keyfactor, the leader in trust infrastructure for AI and machines, today announced a major expansion of its Global Partner Program, designed to help partners capitalize on one of the largest security transformations in decades. As AI accelerates the growth of machine identities and organizations prepare for the transition to post-quantum cryptography […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/22/keyfactor-expands-partner-program-for-post-quantum-security/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Maybell Quantum Deploys Dilution Refrigerators at Roadrunner Quantum Lab]]></title>
            <link>https://quantumcomputinginfo.com/blog/maybell-quantum-deploys-dilution-refrigerators-at-roadrunner-quantum-lab-23561f</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/maybell-quantum-deploys-dilution-refrigerators-at-roadrunner-quantum-lab-23561f</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Cryogenic infrastructure provider Maybell Quantum has announced a hardware and operational expansion into New Mexico, becoming the third major quantum equipment...]]></description>
            <content:encoded><![CDATA[
# Maybell Quantum Deploys Dilution Refrigerators at Roadrunner Quantum Lab

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/maybell-quantum-deploys-dilution-refrigerators-at-roadrunner-quantum-lab/) on July 22, 2026.

Cryogenic infrastructure provider Maybell Quantum has announced a hardware and operational expansion into New Mexico, becoming the third major quantum equipment manufacturer to anchor the state's Roadrunner Quantum Lab (RQL). Headquartered in Denver, Colorado, Maybell will deploy a fleet of four dilution refrigerators at the Albuquerque-based facility, providing the ultra-low millikelvin temperatures essential for running [...] The post Maybell Quantum Deploys Dilution Refrigerators at Roadrunner Quantum Lab appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/maybell-quantum-deploys-dilution-refrigerators-at-roadrunner-quantum-lab/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Neural networks unlock larger quantum simulations with lower computational costs]]></title>
            <link>https://quantumcomputinginfo.com/blog/neural-networks-unlock-larger-quantum-simulations-with-lower-computational-costs-f6f799</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/neural-networks-unlock-larger-quantum-simulations-with-lower-computational-costs-f6f799</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[In recent years, research using artificial intelligence to predict material properties has advanced rapidly. Neural network quantum Monte Carlo methods have att...]]></description>
            <content:encoded><![CDATA[
# Neural networks unlock larger quantum simulations with lower computational costs

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-neural-networks-larger-quantum-simulations.html) on July 22, 2026.

In recent years, research using artificial intelligence to predict material properties has advanced rapidly. Neural network quantum Monte Carlo methods have attracted attention as highly accurate simulation techniques. However, their extremely high computational cost has limited their application to small molecular systems. This study introduces a new computational method that overcomes this limitation.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-neural-networks-larger-quantum-simulations.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[New Framework Uses Quantum Geometry to Help Quantum AI Systems Remember What They Learn]]></title>
            <link>https://quantumcomputinginfo.com/blog/new-framework-uses-quantum-geometry-to-help-quantum-ai-systems-remember-what-they-learn-74b705</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/new-framework-uses-quantum-geometry-to-help-quantum-ai-systems-remember-what-they-learn-74b705</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Researchers have developed a new framework that uses the geometry of quantum states to help quantum machine learning models retain previously lear...]]></description>
            <content:encoded><![CDATA[
# New Framework Uses Quantum Geometry to Help Quantum AI Systems Remember What They Learn

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/22/new-framework-uses-quantum-geometry-to-help-quantum-ai-systems-remember-what-they-learn/) on July 22, 2026.

Insider Brief Researchers have developed a new framework that uses the geometry of quantum states to help quantum machine learning models retain previously learned knowledge while acquiring new tasks, addressing one of the central challenges facing quantum artificial intelligence (AI). The study, published in the preprint server arXiv, introduces a method called Quantum Elastic Weight […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/22/new-framework-uses-quantum-geometry-to-help-quantum-ai-systems-remember-what-they-learn/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[New multiplexing scheme accelerates long-distance quantum communication]]></title>
            <link>https://quantumcomputinginfo.com/blog/new-multiplexing-scheme-accelerates-long-distance-quantum-communication-2fa06e</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/new-multiplexing-scheme-accelerates-long-distance-quantum-communication-2fa06e</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum networks, systems consisting of multiple connected nodes or devices that can transmit quantum information to one another, have the potential to advance...]]></description>
            <content:encoded><![CDATA[
# New multiplexing scheme accelerates long-distance quantum communication

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-multiplexing-scheme-distance-quantum-communication.html) on July 22, 2026.

Quantum networks, systems consisting of multiple connected nodes or devices that can transmit quantum information to one another, have the potential to advance future communications. These networks typically leverage entanglement, a quantum phenomenon that prompts two or more distant particles to become highly correlated, so that measuring one instantly affects the state of the other.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-multiplexing-scheme-distance-quantum-communication.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[New programmable photonic chip can control how fast light moves]]></title>
            <link>https://quantumcomputinginfo.com/blog/new-programmable-photonic-chip-can-control-how-fast-light-moves-5dd9f9</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/new-programmable-photonic-chip-can-control-how-fast-light-moves-5dd9f9</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Scientists have created a programmable optical chip that can slow light on demand, giving engineers far greater control over how optical signals propagate throu...]]></description>
            <content:encoded><![CDATA[
# New programmable photonic chip can control how fast light moves

> **Source:** Originally published on [ScienceDaily Quantum Computers](https://www.sciencedaily.com/releases/2026/07/260718010149.htm) on July 22, 2026.

Scientists have created a programmable optical chip that can slow light on demand, giving engineers far greater control over how optical signals propagate through a circuit. The technology could provide the delays, synchronization, and buffering functions needed to make light-based computing more practical. A single chip could eventually perform several tasks that currently require separate devices, potentially reducing energy use, cost, and complexity in AI servers and data centers.

---

To read the full article, visit the original source page:

[Read the full article on ScienceDaily Quantum Computers →](https://www.sciencedaily.com/releases/2026/07/260718010149.htm)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[New Quantinuum-SoftBank White Paper Shows Quantum Computing Can Deliver Value Before Fault-Tolerant Era]]></title>
            <link>https://quantumcomputinginfo.com/blog/new-quantinuum-softbank-white-paper-shows-quantum-computing-can-deliver-value-before-fault-tolerant-era-5379b4</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/new-quantinuum-softbank-white-paper-shows-quantum-computing-can-deliver-value-before-fault-tolerant-era-5379b4</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief PRESS RELEASE — Quantinuum (NASDAQ: QNT) and SoftBank Corp. (“SoftBank”) today announced the publication of “Quantum Computing Frontiers,” a joint...]]></description>
            <content:encoded><![CDATA[
# New Quantinuum-SoftBank White Paper Shows Quantum Computing Can Deliver Value Before Fault-Tolerant Era

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/22/new-quantinuum-softbank-white-paper-shows-quantum-computing-can-deliver-value-before-fault-tolerant-era/) on July 22, 2026.

Insider Brief PRESS RELEASE — Quantinuum (NASDAQ: QNT) and SoftBank Corp. (“SoftBank”) today announced the publication of “Quantum Computing Frontiers,” a joint white paper that maps two commercially-relevant quantum computing application areas against Quantinuum’s hardware roadmap. The analysis examines how advances in quantum hardware and algorithms could affect when these applications become practical for industrial use. […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/22/new-quantinuum-softbank-white-paper-shows-quantum-computing-can-deliver-value-before-fault-tolerant-era/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Photon Queue Raises $4M Oversubscribed Seed Round to Commercialize Room-Temperature Quantum Memory]]></title>
            <link>https://quantumcomputinginfo.com/blog/photon-queue-raises-4m-oversubscribed-seed-round-to-commercialize-room-temperature-quantum-memory-674acb</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/photon-queue-raises-4m-oversubscribed-seed-round-to-commercialize-room-temperature-quantum-memory-674acb</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum hardware spin-out Photon Queue has closed an oversubscribed $4 million seed funding round led by Palo Alto-based deep-tech venture firm Playground Globa...]]></description>
            <content:encoded><![CDATA[
# Photon Queue Raises $4M Oversubscribed Seed Round to Commercialize Room-Temperature Quantum Memory

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/photon-queue-raises-4m-oversubscribed-seed-round-to-commercialize-room-temperature-quantum-memory/) on July 22, 2026.

Quantum hardware spin-out Photon Queue has closed an oversubscribed $4 million seed funding round led by Palo Alto-based deep-tech venture firm Playground Global. Additional investors in the round include Cerberus Capital Management, Illinois Ventures, Roadrunner Venture Studios, and MFV Partners. Spun out of the University of Illinois Urbana-Champaign in 2024, the Champaign-based startup builds room-temperature [...] The post Photon Queue Raises $4M Oversubscribed Seed Round to Commercialize Room-Temperature Quantum Memory appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/photon-queue-raises-4m-oversubscribed-seed-round-to-commercialize-room-temperature-quantum-memory/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[PsiQuantum Secures $125 Million Expanded Agreement with DARPA under QBI Program]]></title>
            <link>https://quantumcomputinginfo.com/blog/psiquantum-secures-125-million-expanded-agreement-with-darpa-under-qbi-program-904b66</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/psiquantum-secures-125-million-expanded-agreement-with-darpa-under-qbi-program-904b66</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Photonic quantum computing developer PsiQuantum has signed a $125 million expanded tasking agreement with the Defense Advanced Research Projects Agency (DARPA)...]]></description>
            <content:encoded><![CDATA[
# PsiQuantum Secures $125 Million Expanded Agreement with DARPA under QBI Program

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/psiquantum-secures-125-million-expanded-agreement-with-darpa-under-qbi-program/) on July 22, 2026.

Photonic quantum computing developer PsiQuantum has signed a $125 million expanded tasking agreement with the Defense Advanced Research Projects Agency (DARPA) under the Quantum Benchmarking Initiative (QBI). The performance-based award represents PsiQuantum’s most valuable U.S. government contract to date. The agreement funds verification and validation tasks for PsiQuantum's utility-scale hardware architecture, custom integrated photonic manufacturing [...] The post PsiQuantum Secures $125 Million Expanded Agreement with DARPA under QBI Program appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/psiquantum-secures-125-million-expanded-agreement-with-darpa-under-qbi-program/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[QPerfect Partners with University of Strasbourg on Neutral-Atom Quantum Computing Platform]]></title>
            <link>https://quantumcomputinginfo.com/blog/qperfect-partners-with-university-of-strasbourg-on-neutral-atom-quantum-computing-platform-676fd0</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/qperfect-partners-with-university-of-strasbourg-on-neutral-atom-quantum-computing-platform-676fd0</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – BTQ Technologies Corp. (“BTQ“ or the “Company”) (Nasdaq: BTQ) (CBOE CA: BTQ), a global quantum technology company focused on secur...]]></description>
            <content:encoded><![CDATA[
# QPerfect Partners with University of Strasbourg on Neutral-Atom Quantum Computing Platform

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/22/qperfect-university-strasbourg-digital-twin-aqcess-platform/) on July 22, 2026.

Insider Brief Press release – BTQ Technologies Corp. (“BTQ“ or the “Company”) (Nasdaq: BTQ) (CBOE CA: BTQ), a global quantum technology company focused on securing mission-critical networks, today announced that its wholly owned subsidiary, QPerfect, has entered into a research collaboration with the University of Strasbourg in support of aQCess, France’s first publicly accessible neutral atom quantum computing platform. […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/22/qperfect-university-strasbourg-digital-twin-aqcess-platform/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantinuum and SoftBank Publish Framework Linking Quantum Hardware to Enterprise Use Cases]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantinuum-and-softbank-publish-framework-linking-quantum-hardware-to-enterprise-use-cases-d17fb0</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantinuum-and-softbank-publish-framework-linking-quantum-hardware-to-enterprise-use-cases-d17fb0</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[In a joint white paper published today, Quantinuum (NASDAQ: QNT) and Japan-based telecommunications conglomerate SoftBank Corp. have outlined a strategic timeli...]]></description>
            <content:encoded><![CDATA[
# Quantinuum and SoftBank Publish Framework Linking Quantum Hardware to Enterprise Use Cases

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/quantinuum-and-softbank-publish-framework-linking-quantum-hardware-to-enterprise-use-cases/) on July 22, 2026.

In a joint white paper published today, Quantinuum (NASDAQ: QNT) and Japan-based telecommunications conglomerate SoftBank Corp. have outlined a strategic timeline mapping industrial quantum chemistry and graph analytics workloads directly onto Quantinuum’s multi-generational hardware roadmap. The publication, titled "Quantum Computing Frontiers," establishes a framework to evaluate when specific problem classes transition from classical simulation into [...] The post Quantinuum and SoftBank Publish Framework Linking Quantum Hardware to Enterprise Use Cases appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/quantinuum-and-softbank-publish-framework-linking-quantum-hardware-to-enterprise-use-cases/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum Computing Inc. Appoints Susan Hunt as CRO and Creates Chief Product Officer Role]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-computing-inc-appoints-susan-hunt-as-cro-and-creates-chief-product-officer-role-3947e2</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-computing-inc-appoints-susan-hunt-as-cro-and-creates-chief-product-officer-role-3947e2</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Quantum Computing Inc. (“QCi” or the “Company”) (Nasdaq: QUBT), a vertically integrated quantum company pioneering photonics and s...]]></description>
            <content:encoded><![CDATA[
# Quantum Computing Inc. Appoints Susan Hunt as CRO and Creates Chief Product Officer Role

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/22/qci-appoints-susan-hunt-chief-revenue-officer/) on July 22, 2026.

Insider Brief Press release – Quantum Computing Inc. (“QCi” or the “Company”) (Nasdaq: QUBT), a vertically integrated quantum company pioneering photonics and semiconductor manufacturing, today announced the appointment of Susan Hunt as Chief Revenue Officer (CRO) and that Pouya Dianat, who has served as the Company’s CRO, will transition into the newly created role of Chief Product […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/22/qci-appoints-susan-hunt-chief-revenue-officer/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum internet leaves the lab with first real-world entanglement over busy telecom fiber]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-internet-leaves-the-lab-with-first-real-world-entanglement-over-busy-telecom-fiber-c76b1f</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-internet-leaves-the-lab-with-first-real-world-entanglement-over-busy-telecom-fiber-c76b1f</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum information is notoriously fragile. Internet traffic is anything but. Yet Northwestern University scientists have demonstrated they can peacefully coexi...]]></description>
            <content:encoded><![CDATA[
# Quantum internet leaves the lab with first real-world entanglement over busy telecom fiber

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-quantum-internet-lab-real-world.html) on July 22, 2026.

Quantum information is notoriously fragile. Internet traffic is anything but. Yet Northwestern University scientists have demonstrated they can peacefully coexist inside the same fiber-optic cable.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-quantum-internet-lab-real-world.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Researchers expand simulation tool to help design the next generation of photonic and quantum devices]]></title>
            <link>https://quantumcomputinginfo.com/blog/researchers-expand-simulation-tool-to-help-design-the-next-generation-of-photonic-and-quantum-devices-d2fe21</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/researchers-expand-simulation-tool-to-help-design-the-next-generation-of-photonic-and-quantum-devices-d2fe21</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Many modern technologies, from optical communications and artificial intelligence (AI) hardware to advanced sensors and medical imaging, depend on photonic and...]]></description>
            <content:encoded><![CDATA[
# Researchers expand simulation tool to help design the next generation of photonic and quantum devices

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-simulation-tool-generation-photonic-quantum.html) on July 22, 2026.

Many modern technologies, from optical communications and artificial intelligence (AI) hardware to advanced sensors and medical imaging, depend on photonic and semiconductor devices that precisely control the interaction between light and electrons. Designing these devices, however, remains a major challenge because existing simulation tools often require researchers to choose between modeling an entire device or capturing the detailed behavior of electrons. Few can do both within the same model....

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-simulation-tool-generation-photonic-quantum.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Rice joins Department of Energy’s Quantum Science Center to Advance QEC Research]]></title>
            <link>https://quantumcomputinginfo.com/blog/rice-joins-department-of-energys-quantum-science-center-to-advance-qec-research-3aeed4</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/rice-joins-department-of-energys-quantum-science-center-to-advance-qec-research-3aeed4</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Rice University has joined the U.S. Department of Energy Quantum Science Center, expanding the university’s role in a national eff...]]></description>
            <content:encoded><![CDATA[
# Rice joins Department of Energy’s Quantum Science Center to Advance QEC Research

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/22/rice-university-doe-quantum-error-correction-research/) on July 22, 2026.

Insider Brief Press release – Rice University has joined the U.S. Department of Energy Quantum Science Center, expanding the university’s role in a national effort to develop fault-tolerant quantum computers capable of solving scientific problems beyond the reach of today’s systems. Tirthak Patel, assistant professor of computer science at Rice, will lead the university’s contribution, developing and […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/22/rice-university-doe-quantum-error-correction-research/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[SAXON Q Launches 100+ Qubit Diamond-Based Room-Temperature Quantum Computers]]></title>
            <link>https://quantumcomputinginfo.com/blog/saxon-q-launches-100-qubit-diamond-based-room-temperature-quantum-computers-efec42</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/saxon-q-launches-100-qubit-diamond-based-room-temperature-quantum-computers-efec42</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[German quantum computing startup SAXON Q has announced the commercial release of the SXQ128 (128 qubits) and the SXQ512 (512 qubits), marking the first diamond-...]]></description>
            <content:encoded><![CDATA[
# SAXON Q Launches 100+ Qubit Diamond-Based Room-Temperature Quantum Computers

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/saxon-q-launches-100-qubit-diamond-based-room-temperature-quantum-computers/) on July 22, 2026.

German quantum computing startup SAXON Q has announced the commercial release of the SXQ128 (128 qubits) and the SXQ512 (512 qubits), marking the first diamond-based nitrogen-vacancy (NV) center quantum processors to exceed ten physical qubits. Spun out of Leipzig University, the company’s systems operate entirely at room temperature without requiring cryogenic refrigeration, vacuum infrastructure, or [...] The post SAXON Q Launches 100+ Qubit Diamond-Based Room-Temperature Quantum Computers appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/saxon-q-launches-100-qubit-diamond-based-room-temperature-quantum-computers/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Shanghai Startup Unveils Data Center-Ready Quantum Computer at WAIC 2026]]></title>
            <link>https://quantumcomputinginfo.com/blog/shanghai-startup-unveils-data-center-ready-quantum-computer-at-waic-2026-84ed9b</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/shanghai-startup-unveils-data-center-ready-quantum-computer-at-waic-2026-84ed9b</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief A Shanghai quantum computing startup has unveiled a server-sized quantum computer designed for standard data center racks, marking an effort to mo...]]></description>
            <content:encoded><![CDATA[
# Shanghai Startup Unveils Data Center-Ready Quantum Computer at WAIC 2026

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/22/shanghai-startup-unveils-data-center-ready-quantum-computer-at-waic-2026/) on July 22, 2026.

Insider Brief A Shanghai quantum computing startup has unveiled a server-sized quantum computer designed for standard data center racks, marking an effort to move quantum hardware beyond specialized laboratories and toward commercial computing infrastructure, China’s tech media is reporting. The debut by Zhongqi Wuliang at the 2026 World Artificial Intelligence Conference (WAIC) represents how companies […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/22/shanghai-startup-unveils-data-center-ready-quantum-computer-at-waic-2026/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Taiyi Quantum Raises $42 Million to Advance Neutral-Atom Quantum Computing]]></title>
            <link>https://quantumcomputinginfo.com/blog/taiyi-quantum-raises-42-million-to-advance-neutral-atom-quantum-computing-69d944</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/taiyi-quantum-raises-42-million-to-advance-neutral-atom-quantum-computing-69d944</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief PRESS RELEASE — Taiyi Quantum, a Shanghai-based quantum computing company developing fault-tolerant quantum computers based on ytterbium neutral a...]]></description>
            <content:encoded><![CDATA[
# Taiyi Quantum Raises $42 Million to Advance Neutral-Atom Quantum Computing

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/22/taiyi-quantum-raises-42-million-to-advance-neutral-atom-quantum-computing/) on July 22, 2026.

Insider Brief PRESS RELEASE — Taiyi Quantum, a Shanghai-based quantum computing company developing fault-tolerant quantum computers based on ytterbium neutral atoms, has completed a RMB 300 million (approximately US$42 million) Pre-A financing round. The round was co-led by Gaorong Ventures and IDG Capital, with participation from Huakong Fund, Yunqi Partners, Fortune Capital, Boyuan Capital, SAIC […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/22/taiyi-quantum-raises-42-million-to-advance-neutral-atom-quantum-computing/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[A First Bound on the Moffat Energy and Thorium--229 Clock as a Probe of the Nonlocal Time-Energy Structure]]></title>
            <link>https://quantumcomputinginfo.com/blog/a-first-bound-on-the-moffat-energy-and-thorium-229-clock-as-a-probe-of-the-nonlocal-time-energy-structure-30dfb0</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/a-first-bound-on-the-moffat-energy-and-thorium-229-clock-as-a-probe-of-the-nonlocal-time-energy-structure-30dfb0</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.18333v1 Announce Type: new Abstract: The new Thorium--229 nuclear clocks give us a new laboratory system in which to test if modification of the Time...]]></description>
            <content:encoded><![CDATA[
# A First Bound on the Moffat Energy and Thorium--229 Clock as a Probe of the Nonlocal Time-Energy Structure

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.18333) on July 22, 2026.

arXiv:2607.18333v1 Announce Type: new Abstract: The new Thorium--229 nuclear clocks give us a new laboratory system in which to test if modification of the Time-Energy uncertainty principle is correct. In this paper we derive the nonlocal Time-Energy uncertainty principle and then apply the published $^\{229\}$Th nuclear clock data as a first probe of the nonlocality scale \(E_M\). We note that since these experiments were not designed to test nonlocal quantum field theory the constraints are interpreted as motivating bounds and not definitive exclusions. By using the direct clock-energy channel, we find conservative lower bounds on \(E_M\) at the tens of MeV scale, with optimistic present-data estimates reaching the hundred MeV scale. Including the known nuclear sensitivity enhancement of...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.18333)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Adlam's Frame: comment on "Wigner's Frame"]]></title>
            <link>https://quantumcomputinginfo.com/blog/adlams-frame-comment-on-wigners-frame-da7ff0</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/adlams-frame-comment-on-wigners-frame-da7ff0</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.18383v1 Announce Type: new Abstract: Recent no-go theorems based on extended Wigner's Friend scenarios (EWFS) reveal a deep tension between the unive...]]></description>
            <content:encoded><![CDATA[
# Adlam's Frame: comment on \"Wigner's Frame\"

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.18383) on July 22, 2026.

arXiv:2607.18383v1 Announce Type: new Abstract: Recent no-go theorems based on extended Wigner's Friend scenarios (EWFS) reveal a deep tension between the universal validity of quantum theory and local friendliness (LF), the conjunction of three natural assumptions: the absoluteness of observed events, locality, and no-superdeterminism. In a recent work, Adlam argues that this tension can be dissolved by appealing to quantum reference frames (QRFs). We present and critically assess her proposal. We show that her proposed resolution does not arise from QRFs, but instead relies on three independent modifications: certain degrees of freedom are always definite, observers can flip upon measuring spins, and the outcomes the superobservers record and use to test the inequalities are not their fr...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.18383)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Nishimori Threshold Estimation for Bayesian Inference and $\mathbb{Z}_q$ Surface Code Decoding]]></title>
            <link>https://quantumcomputinginfo.com/blog/nishimori-threshold-estimation-for-bayesian-inference-and-mathbbz_q-surface-code-decoding-ac7858</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/nishimori-threshold-estimation-for-bayesian-inference-and-mathbbz_q-surface-code-decoding-ac7858</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.18374v1 Announce Type: new Abstract: In quantum error correction, the error threshold provides essential quantitative guidance for the ability to bri...]]></description>
            <content:encoded><![CDATA[
# Nishimori Threshold Estimation for Bayesian Inference and $\mathbb\{Z\}_q$ Surface Code Decoding

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.18374) on July 22, 2026.

arXiv:2607.18374v1 Announce Type: new Abstract: In quantum error correction, the error threshold provides essential quantitative guidance for the ability to bring about fault-tolerance through decoding the effects of incoherent noise, weak measurement or inference. However, the numerical value of an error threshold is typically only accessible through large-scale numerical simulations of the underlying noise model. Here we introduce an analytical estimate of error thresholds falling into the Nishimori universality class via a Fourier--Walsh projection scheme that maps the critical point of the underlying disorder-free statistical-mechanics model to the Born-disordered Nishimori critical point. Using a minimal replica theory approach, this closed-form estimate is obtained from a projection ...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.18374)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Phase-Selective Amplitude Amplification for Constrained Optimization]]></title>
            <link>https://quantumcomputinginfo.com/blog/phase-selective-amplitude-amplification-for-constrained-optimization-3b7223</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/phase-selective-amplitude-amplification-for-constrained-optimization-3b7223</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.18338v1 Announce Type: new Abstract: This work introduces a variant of Grover amplitude amplification using stabilizer and blade qubits to improve bo...]]></description>
            <content:encoded><![CDATA[
# Phase-Selective Amplitude Amplification for Constrained Optimization

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.18338) on July 22, 2026.

arXiv:2607.18338v1 Announce Type: new Abstract: This work introduces a variant of Grover amplitude amplification using stabilizer and blade qubits to improve boosting robustness across objective distributions. We give geometric intuition, example simulations, and discuss limitations. Formal performance bounds and larger-scale validation are left for future research.

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.18338)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Probing gravitational interaction between milligram optomechanical oscillators operating in the quantum regime]]></title>
            <link>https://quantumcomputinginfo.com/blog/probing-gravitational-interaction-between-milligram-optomechanical-oscillators-operating-in-the-quantum-regime-f8b688</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/probing-gravitational-interaction-between-milligram-optomechanical-oscillators-operating-in-the-quantum-regime-f8b688</guid>
            <pubDate>Wed, 22 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.18351v1 Announce Type: new Abstract: We present an ongoing optomechanical experiment aimed at detecting gravitational interaction between milligram-s...]]></description>
            <content:encoded><![CDATA[
# Probing gravitational interaction between milligram optomechanical oscillators operating in the quantum regime

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.18351) on July 22, 2026.

arXiv:2607.18351v1 Announce Type: new Abstract: We present an ongoing optomechanical experiment aimed at detecting gravitational interaction between milligram-scale oscillators, and exploring its interplay with quantum mechanics. The setup employs two microfabricated oscillators coupled via gravity and read out through a high-finesse optical cavity, at ultra-cryogenic temperature. Finite element simulations, noise modelling, and sensitivity estimates demonstrate that gravitational coupling can be detected with integration times ranging from minutes to hours. The experiment establishes a realistic platform for probing gravitational effects in systems approaching the quantum regime....

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.18351)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Bloch Quantum Tech Hub Secures $55M in Federal and Matching Grants to Build U.S. Quantum Supply Chain]]></title>
            <link>https://quantumcomputinginfo.com/blog/bloch-quantum-tech-hub-secures-55m-in-federal-and-matching-grants-to-build-us-quantum-supply-chain-530418</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/bloch-quantum-tech-hub-secures-55m-in-federal-and-matching-grants-to-build-us-quantum-supply-chain-530418</guid>
            <pubDate>Tue, 21 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[The U.S. Department of Commerce’s Economic Development Administration (EDA) has selected The Bloch Quantum Tech Hub for a $30 million federal implementation awa...]]></description>
            <content:encoded><![CDATA[
# Bloch Quantum Tech Hub Secures $55M in Federal and Matching Grants to Build U.S. Quantum Supply Chain

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/bloch-quantum-tech-hub-secures-55m-in-federal-and-matching-grants-to-build-u-s-quantum-supply-chain/) on July 21, 2026.

The U.S. Department of Commerce’s Economic Development Administration (EDA) has selected The Bloch Quantum Tech Hub for a $30 million federal implementation award. Managed by the Chicago Quantum Exchange (CQE), the multi-state consortium spans Illinois, Indiana, and Wisconsin—a region referred to as the "Quantum Prairie". The federal award has unlocked an additional $25 million in [...] The post Bloch Quantum Tech Hub Secures $55M in Federal and Matching Grants to Build U.S. Quantum Supply Chain appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/bloch-quantum-tech-hub-secures-55m-in-federal-and-matching-grants-to-build-u-s-quantum-supply-chain/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[From quantum error correction to emergent gravity: Probing holographic universes at QLab]]></title>
            <link>https://quantumcomputinginfo.com/blog/from-quantum-error-correction-to-emergent-gravity-probing-holographic-universes-at-qlab-807cbf</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/from-quantum-error-correction-to-emergent-gravity-probing-holographic-universes-at-qlab-807cbf</guid>
            <pubDate>Tue, 21 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[One of the deepest ambitions in modern physics is understanding how the fabric of space and time could emerge from fundamental quantum degrees of freedom to est...]]></description>
            <content:encoded><![CDATA[
# From quantum error correction to emergent gravity: Probing holographic universes at QLab

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-quantum-error-emergent-gravity-probing.html) on July 21, 2026.

One of the deepest ambitions in modern physics is understanding how the fabric of space and time could emerge from fundamental quantum degrees of freedom to establish a quantum theory of gravity.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-quantum-error-emergent-gravity-probing.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Galaxy Commits $5 Million to Prepare Bitcoin for Quantum Computing Threat]]></title>
            <link>https://quantumcomputinginfo.com/blog/galaxy-commits-5-million-to-prepare-bitcoin-for-quantum-computing-threat-cfb580</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/galaxy-commits-5-million-to-prepare-bitcoin-for-quantum-computing-threat-cfb580</guid>
            <pubDate>Tue, 21 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Galaxy Digital has launched the Galaxy Bitcoin Quantum Readiness Initiative, committing up to $5 million toward developer grants, a dedicated rese...]]></description>
            <content:encoded><![CDATA[
# Galaxy Commits $5 Million to Prepare Bitcoin for Quantum Computing Threat

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/21/galaxy-commits-5-million-to-prepare-bitcoin-for-quantum-computing-threat/) on July 21, 2026.

Insider Brief Galaxy Digital has launched the Galaxy Bitcoin Quantum Readiness Initiative, committing up to $5 million toward developer grants, a dedicated research program, and a new advisory council focused on protecting Bitcoin’s cryptographic foundation from future quantum computing attacks. The digital asset and data infrastructure company (Nasdaq: GLXY) announced the three-pillar initiative on Tuesday, […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/21/galaxy-commits-5-million-to-prepare-bitcoin-for-quantum-computing-threat/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Horizon Quantum to Report Second Quarter Financial Results on August 4, 2026]]></title>
            <link>https://quantumcomputinginfo.com/blog/horizon-quantum-to-report-second-quarter-financial-results-on-august-4-2026-ac042a</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/horizon-quantum-to-report-second-quarter-financial-results-on-august-4-2026-ac042a</guid>
            <pubDate>Tue, 21 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Horizon Quantum Holdings Ltd. (Nasdaq: HQ “Horizon Quantum” or the “Company”), a pioneer of software infrastructure for quantum ap...]]></description>
            <content:encoded><![CDATA[
# Horizon Quantum to Report Second Quarter Financial Results on August 4, 2026

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/21/horizon-quantum-to-report-second-quarter-financial-results-on-august-4-2026/) on July 21, 2026.

Insider Brief Press release – Horizon Quantum Holdings Ltd. (Nasdaq: HQ “Horizon Quantum” or the “Company”), a pioneer of software infrastructure for quantum applications, today announced that the Company anticipates releasing its financial results for the quarter ended June 30, 2026, on Tuesday, August 4, 2026, before the financial markets open. Horizon Quantum will host […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/21/horizon-quantum-to-report-second-quarter-financial-results-on-august-4-2026/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Innolume Expands Quantum Dot Laser Production With Veeco MBE System]]></title>
            <link>https://quantumcomputinginfo.com/blog/innolume-expands-quantum-dot-laser-production-with-veeco-mbe-system-536906</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/innolume-expands-quantum-dot-laser-production-with-veeco-mbe-system-536906</guid>
            <pubDate>Tue, 21 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Veeco Instruments Inc. (Nasdaq: VECO) today announced that Innolume, a leading vertically integrated developer and manufacturer of...]]></description>
            <content:encoded><![CDATA[
# Innolume Expands Quantum Dot Laser Production With Veeco MBE System

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/21/innolume-expands-quantum-dot-laser-production/) on July 21, 2026.

Insider Brief Press release – Veeco Instruments Inc. (Nasdaq: VECO) today announced that Innolume, a leading vertically integrated developer and manufacturer of quantum dot (QD) lasers, has purchased a GEN2000™ Molecular Beam Epitaxy (MBE) system to expand production of gallium arsenide (GaAs)-based quantum dot lasers for next-generation optical transceivers and silicon photonics applications. The investment supports […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/21/innolume-expands-quantum-dot-laser-production/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[IonQ, QuantumBasel Study Suggests Hybrid AI Workloads Could Gain Energy Advantages From Quantum Hardware as Systems Scale]]></title>
            <link>https://quantumcomputinginfo.com/blog/ionq-quantumbasel-study-suggests-hybrid-ai-workloads-could-gain-energy-advantages-from-quantum-hardware-as-systems-scale-f7673f</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ionq-quantumbasel-study-suggests-hybrid-ai-workloads-could-gain-energy-advantages-from-quantum-hardware-as-systems-scale-f7673f</guid>
            <pubDate>Tue, 21 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief A hybrid quantum-classical approach to fine-tuning artificial intelligence models could eventually consume less energy than classical simulation w...]]></description>
            <content:encoded><![CDATA[
# IonQ, QuantumBasel Study Suggests Hybrid AI Workloads Could Gain Energy Advantages From Quantum Hardware as Systems Scale

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/21/ionq-quantumbasel-study-suggests-hybrid-ai-workloads-could-gain-energy-advantages-from-quantum-hardware-as-systems-scale/) on July 21, 2026.

Insider Brief A hybrid quantum-classical approach to fine-tuning artificial intelligence models could eventually consume less energy than classical simulation while matching or surpassing several conventional machine-learning methods on a text classification task, offering an early indication that quantum computers may provide practical advantages beyond computational speed. The research, published on arXiv by scientists from IonQ […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/21/ionq-quantumbasel-study-suggests-hybrid-ai-workloads-could-gain-energy-advantages-from-quantum-hardware-as-systems-scale/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Joint Study by AWS, NVIDIA, LBNL, and NASA Establishes Framework for Quantum-HPC Integration]]></title>
            <link>https://quantumcomputinginfo.com/blog/joint-study-by-aws-nvidia-lbnl-and-nasa-establishes-framework-for-quantum-hpc-integration-8a792d</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/joint-study-by-aws-nvidia-lbnl-and-nasa-establishes-framework-for-quantum-hpc-integration-8a792d</guid>
            <pubDate>Tue, 21 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[A cross-institutional research team comprising scientists from Amazon Web Services (AWS), NVIDIA, Lawrence Berkeley National Laboratory (LBNL), and NASA has pub...]]></description>
            <content:encoded><![CDATA[
# Joint Study by AWS, NVIDIA, LBNL, and NASA Establishes Framework for Quantum-HPC Integration

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/joint-study-by-aws-nvidia-lbnl-and-nasa-establishes-framework-for-quantum-hpc-integration/) on July 21, 2026.

A cross-institutional research team comprising scientists from Amazon Web Services (AWS), NVIDIA, Lawrence Berkeley National Laboratory (LBNL), and NASA has published a quantitative performance model to evaluate when quantum processing units (QPUs) must be tightly co-located with classical high-performance computing (HPC) supercomputers—and when standard remote cloud connectivity is fully sufficient. Published on arXiv and highlighted [...] The post Joint Study by AWS, NVIDIA, LBNL, and NASA Establishes Framework for Quantum-HPC Integration appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/joint-study-by-aws-nvidia-lbnl-and-nasa-establishes-framework-for-quantum-hpc-integration/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[New Mexico Awards $1.2M to Expand State Quantum Cluster Across Six Tech Startups]]></title>
            <link>https://quantumcomputinginfo.com/blog/new-mexico-awards-12m-to-expand-state-quantum-cluster-across-six-tech-startups-a7ef22</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/new-mexico-awards-12m-to-expand-state-quantum-cluster-across-six-tech-startups-a7ef22</guid>
            <pubDate>Tue, 21 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[The Technology & Innovation Office (TIO) of Economic Development New Mexico has awarded $1.2 million in non-dilutive capital through the inaugural New Mexico Qu...]]></description>
            <content:encoded><![CDATA[
# New Mexico Awards $1.2M to Expand State Quantum Cluster Across Six Tech Startups

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/new-mexico-awards-1-2m-to-expand-state-quantum-cluster-across-six-tech-startups/) on July 21, 2026.

The Technology & Innovation Office (TIO) of Economic Development New Mexico has awarded $1.2 million in non-dilutive capital through the inaugural New Mexico Quantum Technologies Award. Divided into competitive $200,000 grants, the program funds early-stage hardware, optics, and software developers committed to expanding or establishing operational hubs in the state. All six awardees are required [...] The post New Mexico Awards $1.2M to Expand State Quantum Cluster Across Six Tech Startups appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/new-mexico-awards-1-2m-to-expand-state-quantum-cluster-across-six-tech-startups/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum sensing microscope illuminates transistor design]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-sensing-microscope-illuminates-transistor-design-dc58af</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-sensing-microscope-illuminates-transistor-design-dc58af</guid>
            <pubDate>Tue, 21 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Artificial intelligence faces an energy crisis stemming from a physical traffic jam inside modern computer chips. Processors must continually shuffle data, such...]]></description>
            <content:encoded><![CDATA[
# Quantum sensing microscope illuminates transistor design

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-quantum-microscope-illuminates-transistor.html) on July 21, 2026.

Artificial intelligence faces an energy crisis stemming from a physical traffic jam inside modern computer chips. Processors must continually shuffle data, such as the billions of parameters in complex models, between separate computing and memory nodes. This traffic jam, known as the "von Neumann bottleneck," hinders the speed and energy efficiency of advanced processors.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-quantum-microscope-illuminates-transistor.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[QuantX Labs Achieves In-Orbit Commissioning of World’s First Space-Based Optical Frequency Comb]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantx-labs-achieves-in-orbit-commissioning-of-worlds-first-space-based-optical-frequency-comb-efac7b</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantx-labs-achieves-in-orbit-commissioning-of-worlds-first-space-based-optical-frequency-comb-efac7b</guid>
            <pubDate>Tue, 21 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[South Australian deep-tech pioneer QuantX Labs has announced the successful in-orbit commissioning and operational verification of its space-qualified optical f...]]></description>
            <content:encoded><![CDATA[
# QuantX Labs Achieves In-Orbit Commissioning of World’s First Space-Based Optical Frequency Comb

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/quantx-labs-achieves-in-orbit-commissioning-of-worlds-first-space-based-optical-frequency-comb/) on July 21, 2026.

South Australian deep-tech pioneer QuantX Labs has announced the successful in-orbit commissioning and operational verification of its space-qualified optical frequency comb. Supported by the Australian Space Agency's Moon to Mars Demonstrator Program, the achievement marks the first time an optical frequency comb has been deployed and successfully operated in the space environment. The optical frequency [...] The post QuantX Labs Achieves In-Orbit Commissioning of World’s First Space-Based Optical Frequency Comb appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/quantx-labs-achieves-in-orbit-commissioning-of-worlds-first-space-based-optical-frequency-comb/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Researchers Demonstrate New Superconducting Circuit Design That Could Advance Topological Quantum Computing]]></title>
            <link>https://quantumcomputinginfo.com/blog/researchers-demonstrate-new-superconducting-circuit-design-that-could-advance-topological-quantum-computing-2a3e07</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/researchers-demonstrate-new-superconducting-circuit-design-that-could-advance-topological-quantum-computing-2a3e07</guid>
            <pubDate>Tue, 21 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Researchers have experimentally demonstrated a new type of superconducting quantum circuit that reproduces a long-predicted gauge symmetry believe...]]></description>
            <content:encoded><![CDATA[
# Researchers Demonstrate New Superconducting Circuit Design That Could Advance Topological Quantum Computing

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/21/researchers-demonstrate-new-superconducting-circuit-design-that-could-advance-topological-quantum-computing/) on July 21, 2026.

Insider Brief Researchers have experimentally demonstrated a new type of superconducting quantum circuit that reproduces a long-predicted gauge symmetry believed to be a key ingredient for future topological quantum computers, according to a recent study. The researchers report this marks an early but significant step toward hardware designed to protect quantum information through its underlying […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/21/researchers-demonstrate-new-superconducting-circuit-design-that-could-advance-topological-quantum-computing/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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            <title><![CDATA[SAXON Q Launches Commercial Diamond-Based NV-Center Quantum Computing Systems]]></title>
            <link>https://quantumcomputinginfo.com/blog/saxon-q-launches-commercial-diamond-based-nv-center-quantum-computing-systems-50bcca</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/saxon-q-launches-commercial-diamond-based-nv-center-quantum-computing-systems-50bcca</guid>
            <pubDate>Tue, 21 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – SAXON Q, a pioneer in diamond-based nitrogen-vacancy (NV) quantum computing, today announces the commercial availability of the 12...]]></description>
            <content:encoded><![CDATA[
# SAXON Q Launches Commercial Diamond-Based NV-Center Quantum Computing Systems

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/21/saxon-q-diamond-nv-center-quantum-computers/) on July 21, 2026.

Insider Brief Press release – SAXON Q, a pioneer in diamond-based nitrogen-vacancy (NV) quantum computing, today announces the commercial availability of the 128-qubit SXQ128 and 512-qubit SXQ512 — the first diamond-based NV-center quantum computers to ever exceed 10 qubits. Both systems operate at room temperature with no cryogenic cooling, vacuum equipment or specialized facilities required, offering organizations the ability to run quantum convolutional neural networks (QCNN) and chemistry […]...

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/21/saxon-q-diamond-nv-center-quantum-computers/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Singapore Defence Agencies Partner With IBM to Explore Quantum Computing Applications]]></title>
            <link>https://quantumcomputinginfo.com/blog/singapore-defence-agencies-partner-with-ibm-to-explore-quantum-computing-applications-91dd5c</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/singapore-defence-agencies-partner-with-ibm-to-explore-quantum-computing-applications-91dd5c</guid>
            <pubDate>Tue, 21 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – The Singapore Armed Forces (SAF) Digital and Intelligence Service (DIS) and Defence Science and Technology Agency (DSTA) have part...]]></description>
            <content:encoded><![CDATA[
# Singapore Defence Agencies Partner With IBM to Explore Quantum Computing Applications

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/21/singapore-defence-agencies-ibm-quantum-computing-collaboration/) on July 21, 2026.

Insider Brief Press release – The Singapore Armed Forces (SAF) Digital and Intelligence Service (DIS) and Defence Science and Technology Agency (DSTA) have partnered IBM to explore the use of quantum computing for complex mission planning, such as logistics optimisation use cases. Mission planning often requires balancing numerous operational constraints, resources and timelines, and quantum […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/21/singapore-defence-agencies-ibm-quantum-computing-collaboration/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[UK Government Puts AI at Cabinet Level as DSIT Is Dissolved, Raising Questions For Quantum Strategy]]></title>
            <link>https://quantumcomputinginfo.com/blog/uk-government-puts-ai-at-cabinet-level-as-dsit-is-dissolved-raising-questions-for-quantum-strategy-03a470</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/uk-government-puts-ai-at-cabinet-level-as-dsit-is-dissolved-raising-questions-for-quantum-strategy-03a470</guid>
            <pubDate>Tue, 21 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief The U.K. government has elevated artificial intelligence to the center of policymaking by giving its AI minister a seat in Cabinet while abolishin...]]></description>
            <content:encoded><![CDATA[
# UK Government Puts AI at Cabinet Level as DSIT Is Dissolved, Raising Questions For Quantum Strategy

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/21/uk-government-puts-ai-at-cabinet-level-as-dsit-is-dissolved-raising-questions-for-quantum-strategy/) on July 21, 2026.

Insider Brief The U.K. government has elevated artificial intelligence to the center of policymaking by giving its AI minister a seat in Cabinet while abolishing the Department for Science, Innovation and Technology, a restructuring that could have important implications for Britain’s quantum technology ambitions. According to the BBC, Prime Minister Andy Burnham has dismantled the […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/21/uk-government-puts-ai-at-cabinet-level-as-dsit-is-dissolved-raising-questions-for-quantum-strategy/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[A Hybrid Classical-Quantum Approach for Multi-Constrained Location Optimization Problem]]></title>
            <link>https://quantumcomputinginfo.com/blog/a-hybrid-classical-quantum-approach-for-multi-constrained-location-optimization-problem-4fafa9</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/a-hybrid-classical-quantum-approach-for-multi-constrained-location-optimization-problem-4fafa9</guid>
            <pubDate>Tue, 21 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.16277v1 Announce Type: new Abstract: The Maximal Covering Location Problem (MCLP) is an NP-hard Combinatorial Optimization Problem (COP) that aims to...]]></description>
            <content:encoded><![CDATA[
# A Hybrid Classical-Quantum Approach for Multi-Constrained Location Optimization Problem

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.16277) on July 21, 2026.

arXiv:2607.16277v1 Announce Type: new Abstract: The Maximal Covering Location Problem (MCLP) is an NP-hard Combinatorial Optimization Problem (COP) that aims to determine the optimal facility placements that maximize total coverage. It is characterized by both equality and inequality constraints, which ensure correct coverage but significantly increase the complexity of exploring the solution space as instance size grows. Hybrid quantum-classical approaches might offer a promising alternative to classical optimization methods by enabling the exploration of complex energy landscapes through quantum superposition and probabilistic sampling. In this work, the MCLP is formulated as a Quadratic Unconstrained Binary Optimization (QUBO) model, where constraint embedding plays a critical role in s...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.16277)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[EPIC-CIM: Training Convolutional Neural Networks on a Coherent Ising Machine via Equilibrium Propagation]]></title>
            <link>https://quantumcomputinginfo.com/blog/epic-cim-training-convolutional-neural-networks-on-a-coherent-ising-machine-via-equilibrium-propagation-8ddb4e</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/epic-cim-training-convolutional-neural-networks-on-a-coherent-ising-machine-via-equilibrium-propagation-8ddb4e</guid>
            <pubDate>Tue, 21 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.16271v1 Announce Type: new Abstract: Quantum convolutional neural networks, due to the involvement of quantum measurements and discrete quantum state...]]></description>
            <content:encoded><![CDATA[
# EPIC-CIM: Training Convolutional Neural Networks on a Coherent Ising Machine via Equilibrium Propagation

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.16271) on July 21, 2026.

arXiv:2607.16271v1 Announce Type: new Abstract: Quantum convolutional neural networks, due to the involvement of quantum measurements and discrete quantum state evolution, face inherent training challenges associated with non-differentiable operations and discrete optimization dynamics, which make conventional gradient-based learning difficult to apply effectively. In this context, energy-based learning provides a promising alternative by reformulating network training as an energy minimization process without explicit gradient backpropagation.In this framework, input data are processed through convolutional operations, followed by quantum sampling to generate intermediate binary representations, while the output layer also relies on quantum sampling to produce final predictions. The overa...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.16271)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Intelligence-Guided Adaptive Purification for DDoS-Resilient Quantum Networks: A CUDA-Q based Study]]></title>
            <link>https://quantumcomputinginfo.com/blog/intelligence-guided-adaptive-purification-for-ddos-resilient-quantum-networks-a-cuda-q-based-study-39d3c9</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/intelligence-guided-adaptive-purification-for-ddos-resilient-quantum-networks-a-cuda-q-based-study-39d3c9</guid>
            <pubDate>Tue, 21 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.16276v1 Announce Type: new Abstract: Quantum-repeater networks require adaptive control policies that balance entanglement generation rate, end-to-en...]]></description>
            <content:encoded><![CDATA[
# Intelligence-Guided Adaptive Purification for DDoS-Resilient Quantum Networks: A CUDA-Q based Study

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.16276) on July 21, 2026.

arXiv:2607.16276v1 Announce Type: new Abstract: Quantum-repeater networks require adaptive control policies that balance entanglement generation rate, end-to-end fidelity, purification overhead, and memory-induced latency. This tradeoff becomes more complex when the classical control plane is degraded by cyber anomalies or denial-of-service traffic. We develop a CUDA-Q/SeQUeNCe co-simulation workflow for studying adaptive entanglement purification in heterogeneous linear repeater chains. CUDA-Q noisy quantum kernels are used to estimate primitive entanglement purification and swapping behavior, while SeQUeNCe provides an event-layer model for stochastic link generation, waiting-time-dependent memory decay, purification failure, and end-to-end swapping. Under stationary conditions, we compa...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.16276)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[QR-SPPS: Quantum-Native Retail Supply Chain Risk Simulation via VQE, ADAPT-VQE Counterfactual Policy Ranking, and DOS-QPE Boltzmann Tail Risk Quantification]]></title>
            <link>https://quantumcomputinginfo.com/blog/qr-spps-quantum-native-retail-supply-chain-risk-simulation-via-vqe-adapt-vqe-counterfactual-policy-ranking-and-dos-qpe-boltzmann-tail-risk-quantification-674c4d</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/qr-spps-quantum-native-retail-supply-chain-risk-simulation-via-vqe-adapt-vqe-counterfactual-policy-ranking-and-dos-qpe-boltzmann-tail-risk-quantification-674c4d</guid>
            <pubDate>Tue, 21 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.16275v1 Announce Type: new Abstract: Classical supply chain risk models treat node failures as statistically independent events, systematically under...]]></description>
            <content:encoded><![CDATA[
# QR-SPPS: Quantum-Native Retail Supply Chain Risk Simulation via VQE, ADAPT-VQE Counterfactual Policy Ranking, and DOS-QPE Boltzmann Tail Risk Quantification

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.16275) on July 21, 2026.

arXiv:2607.16275v1 Announce Type: new Abstract: Classical supply chain risk models treat node failures as statistically independent events, systematically underestimating correlated cascade failures across multi-tier supplier networks. We present QR-SPPS (Quantum-Native Retail Shock Propagation and Policy Stress Simulator), a quantum-native framework for retail supply chain risk analysis implemented on the Qiskit ecosystem using OpenFermion-based Ising Hamiltonian encoding. A 40-node, four-tier supply network is mapped to a 40-qubit Hamiltonian with ZZ coupling terms representing correlated supplier dependencies. A hardware-efficient Variational Quantum Eigensolver (VQE) computes the stress ground state, revealing entangled cascade failures that differ substantially from classical Monte Ca...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.16275)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Relativistic bound-state solutions for a non-central Schi{\"o}berg-type hyperbolic potential with double ring-shaped angular terms]]></title>
            <link>https://quantumcomputinginfo.com/blog/relativistic-bound-state-solutions-for-a-non-central-schioberg-type-hyperbolic-potential-with-double-ring-shaped-angular-terms-5f5978</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/relativistic-bound-state-solutions-for-a-non-central-schioberg-type-hyperbolic-potential-with-double-ring-shaped-angular-terms-5f5978</guid>
            <pubDate>Tue, 21 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.16265v1 Announce Type: new Abstract: Singular interactions can reshape quantum spectra by changing admissible wavefunction domains. In this study, we...]]></description>
            <content:encoded><![CDATA[
# Relativistic bound-state solutions for a non-central Schi\{\\"o\}berg-type hyperbolic potential with double ring-shaped angular terms

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.16265) on July 21, 2026.

arXiv:2607.16265v1 Announce Type: new Abstract: Singular interactions can reshape quantum spectra by changing admissible wavefunction domains. In this study, we investigate this mechanism in the Klein--Gordon equation for a non-central Schi\"oberg-type hyperbolic potential with double ring-shaped angular barriers. Equal scalar and vector couplings separate the radial and angular dynamics. We solve the angular equation exactly and treat the radial equation with the Greene--Aldrich approximation, obtaining Jacobi-polynomial wavefunctions and an implicit relativistic quantization condition. The equatorial inverse-square singularity splits configuration space into reflection-related sectors with identical angular spectra. Reducing the barrier to zero within one sector retains only odd-parity s...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.16265)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[An ordinary laptop solved a problem thought to require a quantum computer]]></title>
            <link>https://quantumcomputinginfo.com/blog/an-ordinary-laptop-solved-a-problem-thought-to-require-a-quantum-computer-3ba4cc</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/an-ordinary-laptop-solved-a-problem-thought-to-require-a-quantum-computer-3ba4cc</guid>
            <pubDate>Mon, 20 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[A quantum problem once described as impossible for classical computers has now been solved using relatively modest hardware. Researchers used tensor networks to...]]></description>
            <content:encoded><![CDATA[
# An ordinary laptop solved a problem thought to require a quantum computer

> **Source:** Originally published on [ScienceDaily Quantum Computers](https://www.sciencedaily.com/releases/2026/07/260719040000.htm) on July 20, 2026.

A quantum problem once described as impossible for classical computers has now been solved using relatively modest hardware. Researchers used tensor networks to compress the overwhelming wave function created by hundreds of entangled qubits, allowing some calculations to run on a laptop. Their results matched both theoretical predictions and simulations performed with a quantum computer. The method could open new paths for exploring quantum dynamics and materials.

---

To read the full article, visit the original source page:

[Read the full article on ScienceDaily Quantum Computers →](https://www.sciencedaily.com/releases/2026/07/260719040000.htm)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[BTQ Technologies and TIDAL PWR Develop Framework for Quantum-Ready Data Centers]]></title>
            <link>https://quantumcomputinginfo.com/blog/btq-technologies-and-tidal-pwr-develop-framework-for-quantum-ready-data-centers-b3bf67</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/btq-technologies-and-tidal-pwr-develop-framework-for-quantum-ready-data-centers-b3bf67</guid>
            <pubDate>Mon, 20 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – BTQ Technologies Corp. (“BTQ” or the “Company”) (Nasdaq: BTQ) (CBOE CA: BTQ), a global technology company building the trust infra...]]></description>
            <content:encoded><![CDATA[
# BTQ Technologies and TIDAL PWR Develop Framework for Quantum-Ready Data Centers

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/20/btq-tidal-pwr-quantum-data-center-architecture/) on July 20, 2026.

Insider Brief Press release – BTQ Technologies Corp. (“BTQ” or the “Company”) (Nasdaq: BTQ) (CBOE CA: BTQ), a global technology company building the trust infrastructure for the quantum era, is pleased to announce a strategic collaboration with TIDAL PWR, a Texas-based developer of power generation and data center infrastructure for AI and advanced computing. TIDAL PWR is focused […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/20/btq-tidal-pwr-quantum-data-center-architecture/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[BTQ Technologies and TIDAL PWR Partner to Develop Trusted Quantum Data Center Reference Architectures]]></title>
            <link>https://quantumcomputinginfo.com/blog/btq-technologies-and-tidal-pwr-partner-to-develop-trusted-quantum-data-center-reference-architectures-57ed21</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/btq-technologies-and-tidal-pwr-partner-to-develop-trusted-quantum-data-center-reference-architectures-57ed21</guid>
            <pubDate>Mon, 20 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum infrastructure developer BTQ Technologies Corp. (Nasdaq: BTQ / Cboe CA: BTQ) has entered into a strategic collaboration with Texas-based power generatio...]]></description>
            <content:encoded><![CDATA[
# BTQ Technologies and TIDAL PWR Partner to Develop Trusted Quantum Data Center Reference Architectures

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/btq-technologies-and-tidal-pwr-partner-to-develop-trusted-quantum-data-center-reference-architectures/) on July 20, 2026.

Quantum infrastructure developer BTQ Technologies Corp. (Nasdaq: BTQ / Cboe CA: BTQ) has entered into a strategic collaboration with Texas-based power generation and data center developer TIDAL PWR. The partnership focuses on building a standardized, repeatable blueprint for integrating quantum processing units (QPUs) and post-quantum security protocols directly into next-generation AI and High-Performance Computing (HPC) [...] The post BTQ Technologies and TIDAL PWR Partner to Develop Trusted Quantum Data Center Reference Architectures appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/btq-technologies-and-tidal-pwr-partner-to-develop-trusted-quantum-data-center-reference-architectures/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[CQE-led Bloch Quantum Tech Hub Raises $55 Million]]></title>
            <link>https://quantumcomputinginfo.com/blog/cqe-led-bloch-quantum-tech-hub-raises-55-million-c67d72</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/cqe-led-bloch-quantum-tech-hub-raises-55-million-c67d72</guid>
            <pubDate>Mon, 20 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief PRESS RELEASE — The Bloch Quantum Tech Hub has won nearly $55 million to build the nation a quantum supply chain following a US Economic Developme...]]></description>
            <content:encoded><![CDATA[
# CQE-led Bloch Quantum Tech Hub Raises $55 Million

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/20/cqe-led-bloch-quantum-tech-hub-raises-55-million/) on July 20, 2026.

Insider Brief PRESS RELEASE — The Bloch Quantum Tech Hub has won nearly $55 million to build the nation a quantum supply chain following a US Economic Development Administration award that positions the Illinois-Wisconsin-Indiana region as the center of quantum manufacturing. The multisector project, led by the Chicago Quantum Exchange, leverages the Midwest’s existing manufacturing capacity, talent, […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/20/cqe-led-bloch-quantum-tech-hub-raises-55-million/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[DOE Advances Domestic Silicon and Germanium Isotope Supply Chains For Quantum Information Science]]></title>
            <link>https://quantumcomputinginfo.com/blog/doe-advances-domestic-silicon-and-germanium-isotope-supply-chains-for-quantum-information-science-b06a15</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/doe-advances-domestic-silicon-and-germanium-isotope-supply-chains-for-quantum-information-science-b06a15</guid>
            <pubDate>Mon, 20 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief PRESS RELEASE — The U.S. Department of Energy’s (DOE) Office of Isotope R&D and Production (IRP), within the Office of Science, today announced a...]]></description>
            <content:encoded><![CDATA[
# DOE Advances Domestic Silicon and Germanium Isotope Supply Chains For Quantum Information Science

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/20/doe-advances-domestic-silicon-and-germanium-isotope-supply-chains-for-quantum-information-science/) on July 20, 2026.

Insider Brief PRESS RELEASE — The U.S. Department of Energy’s (DOE) Office of Isotope R&D and Production (IRP), within the Office of Science, today announced a major, multi-laboratory breakthrough in domestic stable isotope enrichment and production capabilities. Through a collaborative effort between Oak Ridge National Laboratory (ORNL) and Pacific Northwest National Laboratory (PNNL), the U.S. […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/20/doe-advances-domestic-silicon-and-germanium-isotope-supply-chains-for-quantum-information-science/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[IEEE Study Highlights How Micro-Transfer Printing Can Lead to Advanced Silicon Photonics]]></title>
            <link>https://quantumcomputinginfo.com/blog/ieee-study-highlights-how-micro-transfer-printing-can-lead-to-advanced-silicon-photonics-efab51</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ieee-study-highlights-how-micro-transfer-printing-can-lead-to-advanced-silicon-photonics-efab51</guid>
            <pubDate>Mon, 20 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Silicon photonics has emerged as a promising technology for addressing bandwidth and latency bottlenecks of conventional electrica...]]></description>
            <content:encoded><![CDATA[
# IEEE Study Highlights How Micro-Transfer Printing Can Lead to Advanced Silicon Photonics

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/20/ieee-study-highlights-how-micro-transfer-printing-can-lead-to-advanced-silicon-photonics/) on July 20, 2026.

Insider Brief Press release – Silicon photonics has emerged as a promising technology for addressing bandwidth and latency bottlenecks of conventional electrical interconnects and therefore are being explored for future artificial intelligence infrastructure. However, heterogenous integration of multiple material systems remains a challenge. Now, researchers show how micro-transfer printing can enable highly versatile heterogenous integration […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/20/ieee-study-highlights-how-micro-transfer-printing-can-lead-to-advanced-silicon-photonics/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Interlune Develops Cryogenic Technology to Expand Helium-3 Supply for Quantum Computing]]></title>
            <link>https://quantumcomputinginfo.com/blog/interlune-develops-cryogenic-technology-to-expand-helium-3-supply-for-quantum-computing-5b67ca</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/interlune-develops-cryogenic-technology-to-expand-helium-3-supply-for-quantum-computing-5b67ca</guid>
            <pubDate>Mon, 20 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Interlune, a space infrastructure and resources company, today announced that its Cold Capture technology has demonstrated product...]]></description>
            <content:encoded><![CDATA[
# Interlune Develops Cryogenic Technology to Expand Helium-3 Supply for Quantum Computing

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/20/interlune-produces-pure-helium-3-from-domestic-helium-using-novel-cryogenic-technology/) on July 20, 2026.

Insider Brief Press release – Interlune, a space infrastructure and resources company, today announced that its Cold Capture technology has demonstrated production of 99% pure helium-3 from Grade A helium. When deployed broadly, the novel technology could triple the current U.S. supply of this critical isotope for use in quantum computing. Helium-3 is strategically important […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/20/interlune-produces-pure-helium-3-from-domestic-helium-using-novel-cryogenic-technology/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Israel Innovation Authority Launches NIS 100 Million National Quantum Computing R&D Infrastructure]]></title>
            <link>https://quantumcomputinginfo.com/blog/israel-innovation-authority-launches-nis-100-million-national-quantum-computing-rd-infrastructure-933f27</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/israel-innovation-authority-launches-nis-100-million-national-quantum-computing-rd-infrastructure-933f27</guid>
            <pubDate>Mon, 20 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – The Israel Innovation Authority has launched a new call for proposals to establish a national research and development infrastruct...]]></description>
            <content:encoded><![CDATA[
# Israel Innovation Authority Launches NIS 100 Million National Quantum Computing R&D Infrastructure

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/20/israel-launches-national-quantum-computing-infrastructure/) on July 20, 2026.

Insider Brief Press release – The Israel Innovation Authority has launched a new call for proposals to establish a national research and development infrastructure that will provide Israeli industry and academia with access to advanced quantum computing capabilities. The infrastructure will integrate at least three different quantum processing technologies and serve as a national center […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/20/israel-launches-national-quantum-computing-infrastructure/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Israel Innovation Authority Launches NIS 100M ($33M USD) Call to Build National Quantum R&D Infrastructure]]></title>
            <link>https://quantumcomputinginfo.com/blog/israel-innovation-authority-launches-nis-100m-33m-usd-call-to-build-national-quantum-rd-infrastructure-51797b</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/israel-innovation-authority-launches-nis-100m-33m-usd-call-to-build-national-quantum-rd-infrastructure-51797b</guid>
            <pubDate>Mon, 20 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[The Israel Innovation Authority (IIA) has announced a NIS 100 million ($33 million USD) call for proposals to establish a centralized national quantum computing...]]></description>
            <content:encoded><![CDATA[
# Israel Innovation Authority Launches NIS 100M ($33M USD) Call to Build National Quantum R&D Infrastructure

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/israel-innovation-authority-launches-nis-100m-call-to-build-national-quantum-rd-infrastructure/) on July 20, 2026.

The Israel Innovation Authority (IIA) has announced a NIS 100 million ($33 million USD) call for proposals to establish a centralized national quantum computing research and development infrastructure. Designed to support both domestic industry and academic institutions, the initiative aims to serve as Israel’s primary national hub for evaluating, integrating, and adopting advanced quantum computing [...] The post Israel Innovation Authority Launches NIS 100M ($33M USD) Call to Build National Quantum R&D Infrastructure appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/israel-innovation-authority-launches-nis-100m-call-to-build-national-quantum-rd-infrastructure/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Maybell Quantum to Establish New Mexico Operations as part of New Mexico’s $450 Million Quantum Initiative]]></title>
            <link>https://quantumcomputinginfo.com/blog/maybell-quantum-to-establish-new-mexico-operations-as-part-of-new-mexicos-450-million-quantum-initiative-acbed6</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/maybell-quantum-to-establish-new-mexico-operations-as-part-of-new-mexicos-450-million-quantum-initiative-acbed6</guid>
            <pubDate>Mon, 20 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Press release – Maybell Quantum today announced it will establish operations at the Roadrunner Quantum Lab Powered by the State of New Mexico. May...]]></description>
            <content:encoded><![CDATA[
# Maybell Quantum to Establish New Mexico Operations as part of New Mexico’s $450 Million Quantum Initiative

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/20/maybell-quantum-new-mexico-quantum-lab/) on July 20, 2026.

Insider Brief Press release – Maybell Quantum today announced it will establish operations at the Roadrunner Quantum Lab Powered by the State of New Mexico. Maybell will expand into the state with new local hires and a fleet of advanced cryogenic systems capable of reaching temperatures near Absolute Zero. The Colorado-based company becomes the third […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/20/maybell-quantum-new-mexico-quantum-lab/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum Computing Inc. Expands Equity Plan After Shareholders Increase Authorized Stock to 450 Million Shares]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-computing-inc-expands-equity-plan-after-shareholders-increase-authorized-stock-to-450-million-shares-3f6137</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-computing-inc-expands-equity-plan-after-shareholders-increase-authorized-stock-to-450-million-shares-3f6137</guid>
            <pubDate>Mon, 20 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief Quantum Computing Inc. has filed a registration statement with the U.S. Securities and Exchange Commission to register an additional 13.5 million...]]></description>
            <content:encoded><![CDATA[
# Quantum Computing Inc. Expands Equity Plan After Shareholders Increase Authorized Stock to 450 Million Shares

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/20/quantum-computing-inc-expands-equity-plan-after-shareholders-increase-authorized-stock-to-450-million-shares/) on July 20, 2026.

Insider Brief Quantum Computing Inc. has filed a registration statement with the U.S. Securities and Exchange Commission to register an additional 13.5 million shares of common stock for issuance under its employee equity compensation plan, expanding the number of shares available for future stock-based awards. The filing, submitted on Form S-8, registers 13,544,946 additional shares […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/20/quantum-computing-inc-expands-equity-plan-after-shareholders-increase-authorized-stock-to-450-million-shares/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum Materials Discovery Could Advance Electronics For Extreme Environments]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-materials-discovery-could-advance-electronics-for-extreme-environments-815e08</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-materials-discovery-could-advance-electronics-for-extreme-environments-815e08</guid>
            <pubDate>Mon, 20 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Insider Brief PRESS RELEASE — University of Arizona researchers have demonstrated a promising new application for graphene nanoribbons, a nanoscale semiconducto...]]></description>
            <content:encoded><![CDATA[
# Quantum Materials Discovery Could Advance Electronics For Extreme Environments

> **Source:** Originally published on [The Quantum Insider](https://thequantuminsider.com/2026/07/20/quantum-materials-discovery-could-advance-electronics-for-extreme-environments/) on July 20, 2026.

Insider Brief PRESS RELEASE — University of Arizona researchers have demonstrated a promising new application for graphene nanoribbons, a nanoscale semiconductor material with the potential to withstand extreme environments. The team’s findings could help clear a key hurdle to bringing fusion energy to the electric grid. For the proof-of-concept study, published in the journal ACS Applied […]

---

To read the full article, visit the original source page:

[Read the full article on The Quantum Insider →](https://thequantuminsider.com/2026/07/20/quantum-materials-discovery-could-advance-electronics-for-extreme-environments/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Zhongqi Wuliang Unveils Server-Rack Neutral-Atom Quantum Computer at WAIC 2026]]></title>
            <link>https://quantumcomputinginfo.com/blog/zhongqi-wuliang-unveils-server-rack-neutral-atom-quantum-computer-at-waic-2026-8b8cc8</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/zhongqi-wuliang-unveils-server-rack-neutral-atom-quantum-computer-at-waic-2026-8b8cc8</guid>
            <pubDate>Mon, 20 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[At the World Artificial Intelligence Conference (WAIC 2026) in Shanghai, Chinese deep-tech startup Zhongqi Wuliang (众擎无量) formally unveiled Qinghe No. 1 (清河一号),...]]></description>
            <content:encoded><![CDATA[
# Zhongqi Wuliang Unveils Server-Rack Neutral-Atom Quantum Computer at WAIC 2026

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/zhongqi-wuliang-unveils-server-rack-neutral-atom-quantum-computer-at-waic-2026/) on July 20, 2026.

At the World Artificial Intelligence Conference (WAIC 2026) in Shanghai, Chinese deep-tech startup Zhongqi Wuliang (众擎无量) formally unveiled Qinghe No. 1 (清河一号), a neutral-atom quantum computer engineered to fit directly into a standard data-center server rack. Spun out from the Chinese Academy of Sciences’ Shanghai Institute of Optics and Fine Mechanics (CAS SIOM) and founded [...] The post Zhongqi Wuliang Unveils Server-Rack Neutral-Atom Quantum Computer at WAIC 2026 appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/zhongqi-wuliang-unveils-server-rack-neutral-atom-quantum-computer-at-waic-2026/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Collective Enhancement of Nuclear Excitation for a Nuclear Quantum Battery]]></title>
            <link>https://quantumcomputinginfo.com/blog/collective-enhancement-of-nuclear-excitation-for-a-nuclear-quantum-battery-566e08</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/collective-enhancement-of-nuclear-excitation-for-a-nuclear-quantum-battery-566e08</guid>
            <pubDate>Mon, 20 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.15319v1 Announce Type: new Abstract: Current implementations of quantum batteries are constrained by limited energy density and short retention times...]]></description>
            <content:encoded><![CDATA[
# Collective Enhancement of Nuclear Excitation for a Nuclear Quantum Battery

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.15319) on July 20, 2026.

arXiv:2607.15319v1 Announce Type: new Abstract: Current implementations of quantum batteries are constrained by limited energy density and short retention times associated with the electronic or molecular excitations. Here we propose a nuclear quantum battery based on collective excitation of the $^\{57\}$Fe nuclei of density $n$ embedded in a planar hard X-ray waveguide. Using a Green function waveguide-QED description, we study charging via excitation beyond linear response, where saturation and drive back-action reshape the incident pulse. We introduce a self-consistent waveform-engineering protocol that inhibits local radiative decay in the waveguide thus promoting absorption into high-lying collective nuclear excitation manifolds. We show an enhanced excitation cross section of the nu...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.15319)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Non-Hermitian Quantum Adiabatic Algorithm]]></title>
            <link>https://quantumcomputinginfo.com/blog/non-hermitian-quantum-adiabatic-algorithm-7315df</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/non-hermitian-quantum-adiabatic-algorithm-7315df</guid>
            <pubDate>Mon, 20 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.15343v1 Announce Type: new Abstract: Non-Hermitian systems offer new opportunities for quantum optimization and computation. Here, we show that non-H...]]></description>
            <content:encoded><![CDATA[
# Non-Hermitian Quantum Adiabatic Algorithm

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.15343) on July 20, 2026.

arXiv:2607.15343v1 Announce Type: new Abstract: Non-Hermitian systems offer new opportunities for quantum optimization and computation. Here, we show that non-Hermitian quantum adiabatic algorithms require not only a real, gapped spectrum, but also a stable pseudospectrum. We propose a novel framework by mapping non-unitary quantum circuits to local Hamiltonian paths, thereby preserving their optimization advantages and shallow depth. While a direct non-Hermitian extension of the Feynman-Kitaev construction suffers severe pseudospectral instability, our history-decoupled construction yields both a controlled pseudospectrum and a real, gapped spectrum. Using the CK benchmark family of maximum independent set problems, we demonstrate polynomial-evolution-time non-Hermitian adiabatic computat...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.15343)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum error-correcting codes from aperiodic monotiles: the Hat and the Spectre]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-error-correcting-codes-from-aperiodic-monotiles-the-hat-and-the-spectre-d74139</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-error-correcting-codes-from-aperiodic-monotiles-the-hat-and-the-spectre-d74139</guid>
            <pubDate>Mon, 20 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.15326v1 Announce Type: new Abstract: Li and Boyle showed that the Penrose tiling defines a quantum error-correcting code: superpositions of tilings o...]]></description>
            <content:encoded><![CDATA[
# Quantum error-correcting codes from aperiodic monotiles: the Hat and the Spectre

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.15326) on July 20, 2026.

arXiv:2607.15326v1 Announce Type: new Abstract: Li and Boyle showed that the Penrose tiling defines a quantum error-correcting code: superpositions of tilings over isometry orbits protect quantum information against erasure of any bounded region. We extend the construction to the aperiodic monotiles discovered by Smith, Myers, Kaplan and Goodman-Strauss. For the Hat, we prove strong local indistinguishability for all Hat tilings, and we prove local recoverability unconditionally for all nonsingular Hat tilings via the torus parametrization of the underlying cut-and-project scheme. The remaining singular case reduces to one sharply posed geometric question -- can a region that is a union of hats be retiled a second way? -- which we verify computationally has no counterexample up to a substa...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.15326)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Shielded RL for Route-Charged Parity-Term Ordering in QEDA Phase Components]]></title>
            <link>https://quantumcomputinginfo.com/blog/shielded-rl-for-route-charged-parity-term-ordering-in-qeda-phase-components-ec070a</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/shielded-rl-for-route-charged-parity-term-ordering-in-qeda-phase-components-ec070a</guid>
            <pubDate>Mon, 20 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.15307v1 Announce Type: new Abstract: Commuting phase terms in quantum electronic design automation (QEDA) placement circuits are logically invariant...]]></description>
            <content:encoded><![CDATA[
# Shielded RL for Route-Charged Parity-Term Ordering in QEDA Phase Components

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.15307) on July 20, 2026.

arXiv:2607.15307v1 Announce Type: new Abstract: Commuting phase terms in quantum electronic design automation (QEDA) placement circuits are logically invariant under reordering, yet their routed cost varies substantially after hardware mapping, since term order affects CNOT cancellation, interaction locality, and routing pressure. We cast parity/support phase-term ordering within a QEDA phase component as a shielded reinforcement-learning problem: a feasibility shield restricts each step to unemitted terms, so every trajectory is a valid permutation by construction, and an elite (cross-entropy-method) policy is trained against a route-charged proxy combining support-transition size and heavy-hex topology-distance features. We validate by direct Qiskit routing of logically equivalent circui...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.15307)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Structure-Agnostic Unitary Learning from Quantum Observable Dynamics with Application to Hamiltonian Identification]]></title>
            <link>https://quantumcomputinginfo.com/blog/structure-agnostic-unitary-learning-from-quantum-observable-dynamics-with-application-to-hamiltonian-identification-942333</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/structure-agnostic-unitary-learning-from-quantum-observable-dynamics-with-application-to-hamiltonian-identification-942333</guid>
            <pubDate>Mon, 20 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2607.15316v1 Announce Type: new Abstract: We present a variational algorithm for learning an unknown quantum unitary from time-series observable measureme...]]></description>
            <content:encoded><![CDATA[
# Structure-Agnostic Unitary Learning from Quantum Observable Dynamics with Application to Hamiltonian Identification

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2607.15316) on July 20, 2026.

arXiv:2607.15316v1 Announce Type: new Abstract: We present a variational algorithm for learning an unknown quantum unitary from time-series observable measurements, with no structural assumption about the target. The core separation: a hardware-efficient parametrised circuit learns the evolution operator U via observable matching; Hamiltonian identification follows as classical post-processing via matrix logarithm, when the target happens to be exp(-iH*tau). Three experiments establish the method's generality. First, a noiseless proof of correctness with exact gradients (L-BFGS-B) achieves MSE 1.61e-14 and recovers all Hamiltonian coefficients to six decimal places. Second, a gate-learning experiment fits CNOT, iSWAP, and a Haar-random SU(4) element -- none generated by any fixed Hamiltoni...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2607.15316)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum entanglement without transport: Leaky qubits offer route around noisy channels]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-entanglement-without-transport-leaky-qubits-offer-route-around-noisy-channels-22e93e</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-entanglement-without-transport-leaky-qubits-offer-route-around-noisy-channels-22e93e</guid>
            <pubDate>Sun, 19 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[The inevitable leakage of energy and information from a quantum system into its surrounding environment is the enemy of quantum technology. Now, researchers hav...]]></description>
            <content:encoded><![CDATA[
# Quantum entanglement without transport: Leaky qubits offer route around noisy channels

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-quantum-entanglement-leaky-qubits-route.html) on July 19, 2026.

The inevitable leakage of energy and information from a quantum system into its surrounding environment is the enemy of quantum technology. Now, researchers have demonstrated that it can be exploited to generate entanglement—the "resource" that quantum technologies use to perform tasks inaccessible to standard classical technologies.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-quantum-entanglement-leaky-qubits-route.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[AI unlocks QLED recipe that doubles efficiency and boosts lifetime 40-fold]]></title>
            <link>https://quantumcomputinginfo.com/blog/ai-unlocks-qled-recipe-that-doubles-efficiency-and-boosts-lifetime-40-fold-f6ebbb</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ai-unlocks-qled-recipe-that-doubles-efficiency-and-boosts-lifetime-40-fold-f6ebbb</guid>
            <pubDate>Sat, 18 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[A technology has been developed that allows artificial intelligence to inversely determine the process conditions for quantum-dot light-emitting diode (QLED) de...]]></description>
            <content:encoded><![CDATA[
# AI unlocks QLED recipe that doubles efficiency and boosts lifetime 40-fold

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-ai-qled-recipe-efficiency-boosts.html) on July 18, 2026.

A technology has been developed that allows artificial intelligence to inversely determine the process conditions for quantum-dot light-emitting diode (QLED) devices—conditions that previously required extensive trial and error to identify.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-ai-qled-recipe-efficiency-boosts.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Aqarios Enters Public Markets via SPAC, Becoming Germany’s First Listed Quantum Pure-Play]]></title>
            <link>https://quantumcomputinginfo.com/blog/aqarios-enters-public-markets-via-spac-becoming-germanys-first-listed-quantum-pure-play-6525cb</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/aqarios-enters-public-markets-via-spac-becoming-germanys-first-listed-quantum-pure-play-6525cb</guid>
            <pubDate>Sat, 18 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Munich-based quantum optimization software provider Aqarios GmbH has completed a public listing on the Düsseldorf Stock Exchange (Börse Düsseldorf) through a re...]]></description>
            <content:encoded><![CDATA[
# Aqarios Enters Public Markets via SPAC, Becoming Germany’s First Listed Quantum Pure-Play

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/aqarios-enters-public-markets-via-spac-becoming-germanys-first-listed-quantum-pure-play/) on July 18, 2026.

Munich-based quantum optimization software provider Aqarios GmbH has completed a public listing on the Düsseldorf Stock Exchange (Börse Düsseldorf) through a reverse merger transaction via a Special Purpose Acquisition Company (SPAC). Following a successful combination agreement with Fonterelli SPAC 4 AG, the newly combined capital market vehicle has been formally renamed Aqarios Quantum Technologies AG. [...] The post Aqarios Enters Public Markets via SPAC, Becoming Germany’s First Listed Quantum Pure-Play appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/aqarios-enters-public-markets-via-spac-becoming-germanys-first-listed-quantum-pure-play/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[How quantum circuits based on neutral atoms could find and fix errors]]></title>
            <link>https://quantumcomputinginfo.com/blog/how-quantum-circuits-based-on-neutral-atoms-could-find-and-fix-errors-82500d</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/how-quantum-circuits-based-on-neutral-atoms-could-find-and-fix-errors-82500d</guid>
            <pubDate>Sat, 18 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum computers, devices that process information by leveraging the laws of quantum mechanics, have been found to outperform classical computers in some advan...]]></description>
            <content:encoded><![CDATA[
# How quantum circuits based on neutral atoms could find and fix errors

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-quantum-circuits-based-neutral-atoms.html) on July 18, 2026.

Quantum computers, devices that process information by leveraging the laws of quantum mechanics, have been found to outperform classical computers in some advanced tasks. Instead of storing information in the form of classical binary bits (i.e., 0 or 1), quantum computers rely on quantum bits (i.e., qubits), which can also exist in combinations of 0 and 1 states.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-quantum-circuits-based-neutral-atoms.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantinuum and Academic Partners Demonstrate First Universal Topological Gate Set via Non-Abelian Anyons]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantinuum-and-academic-partners-demonstrate-first-universal-topological-gate-set-via-non-abelian-anyons-c6f801</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantinuum-and-academic-partners-demonstrate-first-universal-topological-gate-set-via-non-abelian-anyons-c6f801</guid>
            <pubDate>Sat, 18 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[A multi-institutional collaboration including Quantinuum, the University of Chicago Pritzker School of Molecular Engineering (UChicago PME), Harvard University,...]]></description>
            <content:encoded><![CDATA[
# Quantinuum and Academic Partners Demonstrate First Universal Topological Gate Set via Non-Abelian Anyons

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/quantinuum-and-academic-partners-demonstrate-first-universal-topological-gate-set-via-non-abelian-anyons/) on July 18, 2026.

A multi-institutional collaboration including Quantinuum, the University of Chicago Pritzker School of Molecular Engineering (UChicago PME), Harvard University, and Stony Brook University has successfully demonstrated the first universal topological gate set using non-Abelian anyons. Published in Nature, the landmark experiment utilized Quantinuum’s H2 trapped-ion quantum processor to entangle 54 physical qubits, creating a highly stable [...] The post Quantinuum and Academic Partners Demonstrate First Universal Topological Gate Set via Non-Abelian Anyons appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/quantinuum-and-academic-partners-demonstrate-first-universal-topological-gate-set-via-non-abelian-anyons/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Singapore’s pQCee Raises $3.9M Seed Round to Accelerate Global Crypto-Agility Deployment]]></title>
            <link>https://quantumcomputinginfo.com/blog/singapores-pqcee-raises-39m-seed-round-to-accelerate-global-crypto-agility-deployment-080848</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/singapores-pqcee-raises-39m-seed-round-to-accelerate-global-crypto-agility-deployment-080848</guid>
            <pubDate>Sat, 18 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Singapore-based quantum-safe cybersecurity startup pQCee has raised $3.9 million in a seed funding round. The investment reflects a significant shift as commerc...]]></description>
            <content:encoded><![CDATA[
# Singapore’s pQCee Raises $3.9M Seed Round to Accelerate Global Crypto-Agility Deployment

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/singapores-pqcee-raises-3-9m-seed-round-to-accelerate-global-crypto-agility-deployment/) on July 18, 2026.

Singapore-based quantum-safe cybersecurity startup pQCee has raised $3.9 million in a seed funding round. The investment reflects a significant shift as commercial and government entities transition post-quantum cryptography (PQC) out of academic theory and into practical enterprise procurement frameworks. The round was co-led by government-backed deep-tech investor SGInnovate and Lotus One Investment, with participation from [...] The post Singapore’s pQCee Raises $3.9M Seed Round to Accelerate Global Crypto-Agility Deployment appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/singapores-pqcee-raises-3-9m-seed-round-to-accelerate-global-crypto-agility-deployment/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Tennessee Launces Comprehensive K–12 Quantum Education and Career Initiative]]></title>
            <link>https://quantumcomputinginfo.com/blog/tennessee-launces-comprehensive-k12-quantum-education-and-career-initiative-5599c0</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/tennessee-launces-comprehensive-k12-quantum-education-and-career-initiative-5599c0</guid>
            <pubDate>Sat, 18 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[The Chattanooga Quantum Collaborative (CQC) has launched TN QuantumWorks, one of the United States' first comprehensive K–12 quantum technology and career aware...]]></description>
            <content:encoded><![CDATA[
# Tennessee Launces Comprehensive K–12 Quantum Education and Career Initiative

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/tennessee-launces-comprehensive-k-12-quantum-education-and-career-initiative/) on July 18, 2026.

The Chattanooga Quantum Collaborative (CQC) has launched TN QuantumWorks, one of the United States' first comprehensive K–12 quantum technology and career awareness education initiatives. Developed by workforce education innovators Dr. Dane and Sheila Boyington of Thinking Media, the curriculum will be introduced as an active pilot program within Hamilton County Schools before expanding statewide. Supported [...] The post Tennessee Launces Comprehensive K–12 Quantum Education and Career Initiative appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/tennessee-launces-comprehensive-k-12-quantum-education-and-career-initiative/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Who’s News: Strategic Appointments at Pasqal, PsiQuantum, and Haiqu]]></title>
            <link>https://quantumcomputinginfo.com/blog/whos-news-strategic-appointments-at-pasqal-psiquantum-and-haiqu-d7f050</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/whos-news-strategic-appointments-at-pasqal-psiquantum-and-haiqu-d7f050</guid>
            <pubDate>Sat, 18 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Pasqal has appointed Mark Armstrong as Chief Commercial Officer for Europe, the Middle East, and Africa (EMEA) and the Asia-Pacific region (APAC). Armstrong joi...]]></description>
            <content:encoded><![CDATA[
# Who’s News: Strategic Appointments at Pasqal, PsiQuantum, and Haiqu

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/whos-news-strategic-appointments-at-pasqal-psiquantum-and-haiqu/) on July 18, 2026.

Pasqal has appointed Mark Armstrong as Chief Commercial Officer for Europe, the Middle East, and Africa (EMEA) and the Asia-Pacific region (APAC). Armstrong joins from Hewlett Packard Enterprise (HPE), where he served as EMEA Vice President and General Manager for High Performance Computing and AI. In his new role, he will oversee Pasqal's commercial strategy, [...] The post Who’s News: Strategic Appointments at Pasqal, PsiQuantum, and Haiqu appeared first on Quantum Computing Report.

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/whos-news-strategic-appointments-at-pasqal-psiquantum-and-haiqu/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[A scheme to verify gates of a quantum computer without examining devices]]></title>
            <link>https://quantumcomputinginfo.com/blog/a-scheme-to-verify-gates-of-a-quantum-computer-without-examining-devices-71a59a</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/a-scheme-to-verify-gates-of-a-quantum-computer-without-examining-devices-71a59a</guid>
            <pubDate>Fri, 17 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum computers, systems that process information using the principles of quantum mechanics, could solve some problems that cannot be tackled by the classical...]]></description>
            <content:encoded><![CDATA[
# A scheme to verify gates of a quantum computer without examining devices

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-scheme-gates-quantum-devices.html) on July 17, 2026.

Quantum computers, systems that process information using the principles of quantum mechanics, could solve some problems that cannot be tackled by the classical computers currently used worldwide. Despite their potential, verifying that these computers are working correctly and can reliably perform computations remains challenging.

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-scheme-gates-quantum-devices.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[How Gravity from Entropy theory connects the second law of thermodynamics with the emergence of cosmic structure]]></title>
            <link>https://quantumcomputinginfo.com/blog/how-gravity-from-entropy-theory-connects-the-second-law-of-thermodynamics-with-the-emergence-of-cosmic-structure-19e694</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/how-gravity-from-entropy-theory-connects-the-second-law-of-thermodynamics-with-the-emergence-of-cosmic-structure-19e694</guid>
            <pubDate>Fri, 17 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[A new study by Queen Mary University of London mathematician Professor Ginestra Bianconi proposes a new perspective on one of the deepest questions in modern ph...]]></description>
            <content:encoded><![CDATA[
# How Gravity from Entropy theory connects the second law of thermodynamics with the emergence of cosmic structure

> **Source:** Originally published on [Phys.org Quantum Physics](https://phys.org/news/2026-07-gravity-entropy-theory-law-thermodynamics.html) on July 17, 2026.

A new study by Queen Mary University of London mathematician Professor Ginestra Bianconi proposes a new perspective on one of the deepest questions in modern physics: How can the universe become increasingly structured and complex while still obeying the second law of thermodynamics?

---

To read the full article, visit the original source page:

[Read the full article on Phys.org Quantum Physics →](https://phys.org/news/2026-07-gravity-entropy-theory-law-thermodynamics.html)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Connect more of your apps to Search]]></title>
            <link>https://quantumcomputinginfo.com/blog/connect-more-of-your-apps-to-search-cfc723</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/connect-more-of-your-apps-to-search-cfc723</guid>
            <pubDate>Thu, 16 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[You’ll be able to securely link and interact with your go-to services directly in AI Mode....]]></description>
            <content:encoded><![CDATA[
# Connect more of your apps to Search

> **Source:** Originally published on [Google AI Blog](https://blog.google/products-and-platforms/products/search/connected-apps/) on July 17, 2026.

You’ll be able to securely link and interact with your go-to services directly in AI Mode.

---

To read the full article, visit the original source page:

[Read the full article on Google AI Blog →](https://blog.google/products-and-platforms/products/search/connected-apps/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Create, edit and star in videos with two Google Vids updates]]></title>
            <link>https://quantumcomputinginfo.com/blog/create-edit-and-star-in-videos-with-two-google-vids-updates-6a0f44</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/create-edit-and-star-in-videos-with-two-google-vids-updates-6a0f44</guid>
            <pubDate>Thu, 16 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Gemini Omni and personal avatars in Google Vids make video creation easier than ever....]]></description>
            <content:encoded><![CDATA[
# Create, edit and star in videos with two Google Vids updates

> **Source:** Originally published on [Google AI Blog](https://blog.google/products-and-platforms/products/workspace/gemini-omni-personal-avatars/) on July 17, 2026.

Gemini Omni and personal avatars in Google Vids make video creation easier than ever.

---

To read the full article, visit the original source page:

[Read the full article on Google AI Blog →](https://blog.google/products-and-platforms/products/workspace/gemini-omni-personal-avatars/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Celebrating 25 years of visual search innovation]]></title>
            <link>https://quantumcomputinginfo.com/blog/celebrating-25-years-of-visual-search-innovation-d836dc</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/celebrating-25-years-of-visual-search-innovation-d836dc</guid>
            <pubDate>Tue, 14 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Google Images is turning 25. Here’s a look back at some major milestones — and new ways to explore and create visual content....]]></description>
            <content:encoded><![CDATA[
# Celebrating 25 years of visual search innovation

> **Source:** Originally published on [Google AI Blog](https://blog.google/products-and-platforms/products/search/google-images-25th-anniversary/) on July 15, 2026.

Google Images is turning 25. Here’s a look back at some major milestones — and new ways to explore and create visual content.

---

To read the full article, visit the original source page:

[Read the full article on Google AI Blog →](https://blog.google/products-and-platforms/products/search/google-images-25th-anniversary/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[New AI model reveals how neutron star mergers forge heavy elements]]></title>
            <link>https://quantumcomputinginfo.com/blog/new-ai-model-reveals-how-neutron-star-mergers-forge-heavy-elements-c57d24</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/new-ai-model-reveals-how-neutron-star-mergers-forge-heavy-elements-c57d24</guid>
            <pubDate>Wed, 08 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Researchers have created an AI-based simulation that makes it much faster to model how neutron star mergers produce many of the universe's heaviest elements. Th...]]></description>
            <content:encoded><![CDATA[
# New AI model reveals how neutron star mergers forge heavy elements

> **Source:** Originally published on [ScienceDaily Quantum Computers](https://www.sciencedaily.com/releases/2026/06/260626030426.htm) on July 8, 2026.

Researchers have created an AI-based simulation that makes it much faster to model how neutron star mergers produce many of the universe's heaviest elements. The new tool could improve predictions of these powerful explosions while helping scientists better connect observations in space with experiments on Earth.

---

To read the full article, visit the original source page:

[Read the full article on ScienceDaily Quantum Computers →](https://www.sciencedaily.com/releases/2026/06/260626030426.htm)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum mechanics once baffled scientists. Now it's changing the world]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-mechanics-once-baffled-scientists-now-its-changing-the-world-4152d4</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-mechanics-once-baffled-scientists-now-its-changing-the-world-4152d4</guid>
            <pubDate>Sun, 05 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum mechanics has journeyed from a strange and controversial idea to the foundation of some of humanity’s most advanced technologies. Now researchers are pu...]]></description>
            <content:encoded><![CDATA[
# Quantum mechanics once baffled scientists. Now it's changing the world

> **Source:** Originally published on [ScienceDaily Quantum Computers](https://www.sciencedaily.com/releases/2026/06/260624025516.htm) on July 6, 2026.

Quantum mechanics has journeyed from a strange and controversial idea to the foundation of some of humanity’s most advanced technologies. Now researchers are pushing its boundaries even further, with potential breakthroughs in energy, medicine, computing, and our understanding of the universe.

---

To read the full article, visit the original source page:

[Read the full article on ScienceDaily Quantum Computers →](https://www.sciencedaily.com/releases/2026/06/260624025516.htm)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Tiny magnetic waves could unlock quantum computers the size of a penny]]></title>
            <link>https://quantumcomputinginfo.com/blog/tiny-magnetic-waves-could-unlock-quantum-computers-the-size-of-a-penny-6ab06f</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/tiny-magnetic-waves-could-unlock-quantum-computers-the-size-of-a-penny-6ab06f</guid>
            <pubDate>Thu, 02 Jul 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[A major breakthrough in quantum technology has turned magnons, tiny magnetic waves once considered too short-lived for practical use, into promising carriers of...]]></description>
            <content:encoded><![CDATA[
# Tiny magnetic waves could unlock quantum computers the size of a penny

> **Source:** Originally published on [ScienceDaily Quantum Computers](https://www.sciencedaily.com/releases/2026/06/260626030431.htm) on July 2, 2026.

A major breakthrough in quantum technology has turned magnons, tiny magnetic waves once considered too short-lived for practical use, into promising carriers of quantum information. Researchers extended their lifetime by nearly 100 times, reaching up to 18 microseconds, and discovered that the main limitation is not a law of physics but the purity of the material itself. That means future improvements could come from better manufacturing rather than entirely new discoveries.

---

To read the full article, visit the original source page:

[Read the full article on ScienceDaily Quantum Computers →](https://www.sciencedaily.com/releases/2026/06/260626030431.htm)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Classiq and Hatch Validate Hybrid Quantum-Classical Chemistry Pipeline on AWS Infrastructure]]></title>
            <link>https://quantumcomputinginfo.com/blog/classiq-and-hatch-validate-hybrid-quantum-classical-chemistry-pipeline-on-aws-infrastructure-60f6ad</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/classiq-and-hatch-validate-hybrid-quantum-classical-chemistry-pipeline-on-aws-infrastructure-60f6ad</guid>
            <pubDate>Thu, 25 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Software developer Classiq and innovation center Hatch have completed a computational chemistry proof-of-concept (PoC) to estimate molecular binding energy via...]]></description>
            <content:encoded><![CDATA[
# Classiq and Hatch Validate Hybrid Quantum-Classical Chemistry Pipeline on AWS Infrastructure

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/classiq-and-hatch-validate-hybrid-quantum-classical-chemistry-pipeline-on-aws-infrastructure/) on June 25, 2026.

Software developer Classiq and innovation center Hatch have completed a computational chemistry proof-of-concept (PoC) to estimate molecular binding energy via Amazon Web Services (AWS) and Amazon Braket. Executed through Hatch’s Dimension X open innovation challenge for Singapore’s Home Team and aligned with Singapore’s National Quantum Strategy, the project establishes a functional pipeline for analyzing how [...] The post Classiq and Hatch Validate Hybrid Quantum-Classical Chemistry Pipeline on AWS Infrastructure appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/classiq-and-hatch-validate-hybrid-quantum-classical-chemistry-pipeline-on-aws-infrastructure/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Classiq and TEA TEK Group Partner to Establish Quantum Computing Hub in Naples]]></title>
            <link>https://quantumcomputinginfo.com/blog/classiq-and-tea-tek-group-partner-to-establish-quantum-computing-hub-in-naples-1c6d75</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/classiq-and-tea-tek-group-partner-to-establish-quantum-computing-hub-in-naples-1c6d75</guid>
            <pubDate>Thu, 25 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Classiq and technology company TEA TEK Group have announced a strategic partnership to establish a quantum computing hub in Naples, Italy. The facility is confi...]]></description>
            <content:encoded><![CDATA[
# Classiq and TEA TEK Group Partner to Establish Quantum Computing Hub in Naples

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/classiq-and-tea-tek-group-partner-to-establish-quantum-computing-hub-in-naples/) on June 25, 2026.

Classiq and technology company TEA TEK Group have announced a strategic partnership to establish a quantum computing hub in Naples, Italy. The facility is configured to operate as a center for quantum computing research, software compilation, and commercial services within Italy and the European Union. By connecting a 128-qubit quantum hardware system with Classiq’s algorithm [...] The post Classiq and TEA TEK Group Partner to Establish Quantum Computing Hub in Naples appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/classiq-and-tea-tek-group-partner-to-establish-quantum-computing-hub-in-naples/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Jülich Supercomputing Centre Utilizes JUPITER Exascale Hardware to Set 50-Qubit Quantum Simulation Benchmark]]></title>
            <link>https://quantumcomputinginfo.com/blog/jlich-supercomputing-centre-utilizes-jupiter-exascale-hardware-to-set-50-qubit-quantum-simulation-benchmark-c739ab</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/jlich-supercomputing-centre-utilizes-jupiter-exascale-hardware-to-set-50-qubit-quantum-simulation-benchmark-c739ab</guid>
            <pubDate>Thu, 25 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[The Jülich Supercomputing Centre (JSC) has established an operational baseline in classical quantum emulations by executing a full simulation of a universal 50-...]]></description>
            <content:encoded><![CDATA[
# Jülich Supercomputing Centre Utilizes JUPITER Exascale Hardware to Set 50-Qubit Quantum Simulation Benchmark

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/julich-supercomputing-centre-utilizes-jupiter-exascale-hardware-to-set-50-qubit-quantum-simulation-benchmark/) on June 25, 2026.

The Jülich Supercomputing Centre (JSC) has established an operational baseline in classical quantum emulations by executing a full simulation of a universal 50-qubit quantum computer. Conducted on JUPITER, Europe’s initial exascale supercomputer hosted at Forschungszentrum Jülich in Germany, the achievement utilizes the JUQCS-50 (Jülich Quantum Computer Simulator) framework developed alongside the jointly run NVIDIA Application [...] The post Jülich Supercomputing Centre Utilizes JUPITER Exascale Hardware to Set 50-Qubit Quantum Simulation Benchmark appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/julich-supercomputing-centre-utilizes-jupiter-exascale-hardware-to-set-50-qubit-quantum-simulation-benchmark/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[MIT in the media: Exploring how curiosity-driven science is an essential ingredient in America’s success]]></title>
            <link>https://quantumcomputinginfo.com/blog/mit-in-the-media-exploring-how-curiosity-driven-science-is-an-essential-ingredient-in-americas-success-145bae</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/mit-in-the-media-exploring-how-curiosity-driven-science-is-an-essential-ingredient-in-americas-success-145bae</guid>
            <pubDate>Thu, 25 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[“Scientific American” showcases the history and future of America’s scientific engine, highlighting promising young scientists and icons at MIT and beyond....]]></description>
            <content:encoded><![CDATA[
# MIT in the media: Exploring how curiosity-driven science is an essential ingredient in America’s success

> **Source:** Originally published on [MIT News Quantum](https://news.mit.edu/2026/mit-media-exploring-how-curiosity-driven-science-essential-ingredient-americas-success) on June 25, 2026.

“Scientific American” showcases the history and future of America’s scientific engine, highlighting promising young scientists and icons at MIT and beyond.

---

To read the full article, visit the original source page:

[Read the full article on MIT News Quantum →](https://news.mit.edu/2026/mit-media-exploring-how-curiosity-driven-science-essential-ingredient-americas-success)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum Elements, USC Publish a New Quantum Monte Carlo (QMC) Method for Noisy Circuit Simulation]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-elements-usc-publish-a-new-quantum-monte-carlo-qmc-method-for-noisy-circuit-simulation-055006</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-elements-usc-publish-a-new-quantum-monte-carlo-qmc-method-for-noisy-circuit-simulation-055006</guid>
            <pubDate>Thu, 25 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum Elements and the University of Southern California (USC) have published a peer-reviewed paper in Physical Review Letters (PRL) detailing a new Quantum M...]]></description>
            <content:encoded><![CDATA[
# Quantum Elements, USC Publish a New Quantum Monte Carlo (QMC) Method for Noisy Circuit Simulation

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/quantum-elements-usc-publish-a-new-quantum-monte-carlo-qmc-method-for-noisy-circuit-simulation/) on June 25, 2026.

Quantum Elements and the University of Southern California (USC) have published a peer-reviewed paper in Physical Review Letters (PRL) detailing a new Quantum Monte Carlo (QMC) algorithm that significantly lowers the classical computing power needed to simulate noisy quantum circuits. Traditional open-system simulations rely on direct density-matrix tracking, which scales exponentially quickly crippling classical hardware. [...] The post Quantum Elements, USC Publish a New Quantum Monte Carlo (QMC) Method for Noisy Circuit Simulation appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/quantum-elements-usc-publish-a-new-quantum-monte-carlo-qmc-method-for-noisy-circuit-simulation/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[STMicroelectronics Launches ST54M Monolithic Mobile Chip with Post-Quantum Cryptography Accelerator]]></title>
            <link>https://quantumcomputinginfo.com/blog/stmicroelectronics-launches-st54m-monolithic-mobile-chip-with-post-quantum-cryptography-accelerator-6cd0a1</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/stmicroelectronics-launches-st54m-monolithic-mobile-chip-with-post-quantum-cryptography-accelerator-6cd0a1</guid>
            <pubDate>Thu, 25 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Semiconductor manufacturer STMicroelectronics has introduced the ST54M, a single-die secure mobile processor equipped with a hardware accelerator for Post-Quant...]]></description>
            <content:encoded><![CDATA[
# STMicroelectronics Launches ST54M Monolithic Mobile Chip with Post-Quantum Cryptography Accelerator

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/stmicroelectronics-launches-st54m-monolithic-mobile-chip-with-post-quantum-cryptography-accelerator/) on June 25, 2026.

Semiconductor manufacturer STMicroelectronics has introduced the ST54M, a single-die secure mobile processor equipped with a hardware accelerator for Post-Quantum Cryptography (PQC). Designed for smartphones and personal electronics, the chip integrates Near Field Communication (NFC) control circuits, a secure element, and embedded SIM (eSIM) functionality on a single substrate. The hardware platform targets upcoming security standards [...] The post STMicroelectronics Launches ST54M Monolithic Mobile Chip with Post-Quantum Cryptography Accelerator appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/stmicroelectronics-launches-st54m-monolithic-mobile-chip-with-post-quantum-cryptography-accelerator/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[AI Is Designing Radio Chips That Humans Couldn’t Even Imagine]]></title>
            <link>https://quantumcomputinginfo.com/blog/ai-is-designing-radio-chips-that-humans-couldnt-even-imagine-0ab3d7</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ai-is-designing-radio-chips-that-humans-couldnt-even-imagine-0ab3d7</guid>
            <pubDate>Wed, 24 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Summary RFIC design is a complex “dark art” that limits progress in wireless technologies like 5G, autonomous vehicles, and satellite communications. Princeton...]]></description>
            <content:encoded><![CDATA[
# AI Is Designing Radio Chips That Humans Couldn’t Even Imagine

> **Source:** Originally published on [IEEE Spectrum Quantum](https://spectrum.ieee.org/ai-radio-chip-design) on June 24, 2026.

Summary RFIC design is a complex “dark art” that limits progress in wireless technologies like 5G, autonomous vehicles, and satellite communications. Princeton researchers use reinforcement learning and inverse design to rapidly create RFICs from scratch. Diffusion models rapidly generate novel or human-interpretable RF layouts, achieving record performance and drastically reducing design time. Future progress needs large, shared chip design datasets and open ecosystems so AI can learn universal electromagnetic and circuit behaviors. Take a moment and try to imagine your life without the wireless advances of the past three decades. Have you lost your luggage? What a shame AirTags have not been invented. The airline representative has promised to call with updates, so settle in for a long w...

---

To read the full article, visit the original source page:

[Read the full article on IEEE Spectrum Quantum →](https://spectrum.ieee.org/ai-radio-chip-design)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Bull and Alice & Bob Partner to Integrate Cat Qubit Processors into High-Performance Computing]]></title>
            <link>https://quantumcomputinginfo.com/blog/bull-and-alice-bob-partner-to-integrate-cat-qubit-processors-into-high-performance-computing-224b15</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/bull-and-alice-bob-partner-to-integrate-cat-qubit-processors-into-high-performance-computing-224b15</guid>
            <pubDate>Wed, 24 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Bull and quantum hardware developer Alice & Bob have signed a Memorandum of Understanding to integrate quantum computing systems within high-performance computi...]]></description>
            <content:encoded><![CDATA[
# Bull and Alice & Bob Partner to Integrate Cat Qubit Processors into High-Performance Computing

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/bull-and-alice-bob-form-alliance-to-integrate-fault-tolerant-cat-qubit-processors-into-high-performance-computing/) on June 25, 2026.

Bull and quantum hardware developer Alice & Bob have signed a Memorandum of Understanding to integrate quantum computing systems within high-performance computing (HPC) infrastructures. The initiative aims to connect quantum architectures with computing infrastructures to operate as co-processors. By combining Bull's system integration and manufacturing capabilities with Alice & Bob’s superconducting qubit technology, the collaboration [...] The post Bull and Alice & Bob Partner to Integrate Cat Qubit Processors into High-Performance Computing appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/bull-and-alice-bob-form-alliance-to-integrate-fault-tolerant-cat-qubit-processors-into-high-performance-computing/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[DOE Launches “Quantum Genesis” Initiative]]></title>
            <link>https://quantumcomputinginfo.com/blog/doe-launches-quantum-genesis-initiative-ce16ea</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/doe-launches-quantum-genesis-initiative-ce16ea</guid>
            <pubDate>Wed, 24 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[The U.S. Department of Energy (DOE) has announced Quantum Genesis, an ambitious initiative to build and deploy the world’s first scientifically relevant, fault-...]]></description>
            <content:encoded><![CDATA[
# DOE Launches “Quantum Genesis” Initiative

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/doe-launches-quantum-genesis-initiative/) on June 25, 2026.

The U.S. Department of Energy (DOE) has announced Quantum Genesis, an ambitious initiative to build and deploy the world’s first scientifically relevant, fault-tolerant quantum computer by 2028. Operating under the broader AI and supercomputing-focused Genesis Mission, the program aims to integrate advanced quantum processors directly with the nation's leading supercomputing ecosystems. The initiative directly follows [...] The post DOE Launches “Quantum Genesis” Initiative appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/doe-launches-quantum-genesis-initiative/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[qBraid Integrates NVIDIA CUDA-Q Remote Targets, Expands GPU Fleet, and Deploys Google Cloud AlphaEvolve for Error Correction]]></title>
            <link>https://quantumcomputinginfo.com/blog/qbraid-integrates-nvidia-cuda-q-remote-targets-expands-gpu-fleet-and-deploys-google-cloud-alphaevolve-for-error-correction-34a33a</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/qbraid-integrates-nvidia-cuda-q-remote-targets-expands-gpu-fleet-and-deploys-google-cloud-alphaevolve-for-error-correction-34a33a</guid>
            <pubDate>Wed, 24 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum cloud platform qBraid has announced a series of infrastructure expansions and algorithmic breakthroughs aimed at consolidating its hybrid quantum-classi...]]></description>
            <content:encoded><![CDATA[
# qBraid Integrates NVIDIA CUDA-Q Remote Targets, Expands GPU Fleet, and Deploys Google Cloud AlphaEvolve for Error Correction

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/qbraid-integrates-nvidia-cuda-q-remote-targets-expands-gpu-fleet-and-deploys-google-cloud-alphaevolve-for-error-correction/) on June 25, 2026.

Quantum cloud platform qBraid has announced a series of infrastructure expansions and algorithmic breakthroughs aimed at consolidating its hybrid quantum-classical development pipeline. The updates establish qBraid as a remote cloud target within the NVIDIA CUDA-Q framework, expand qBraid Lab's on-demand graphics processing unit (GPU) hardware fleet, and deploy Google Cloud’s AlphaEvolve automated coding agent to [...] The post qBraid Integrates NVIDIA CUDA-Q Remote Targets, Expands GPU Fleet, and Deploys Google Cloud AlphaEvolve for Error Correction appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/qbraid-integrates-nvidia-cuda-q-remote-targets-expands-gpu-fleet-and-deploys-google-cloud-alphaevolve-for-error-correction/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[QCentroid Enters Aviation and Telecommunication Consortia to Deploy QuantumOps Infrastructures]]></title>
            <link>https://quantumcomputinginfo.com/blog/qcentroid-enters-aviation-and-telecommunication-consortia-to-deploy-quantumops-infrastructures-614d41</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/qcentroid-enters-aviation-and-telecommunication-consortia-to-deploy-quantumops-infrastructures-614d41</guid>
            <pubDate>Wed, 24 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Enterprise platform developer QCentroid has joined two major industrial research initiatives in Spain designed to transition quantum and hybrid computing workfl...]]></description>
            <content:encoded><![CDATA[
# QCentroid Enters Aviation and Telecommunication Consortia to Deploy QuantumOps Infrastructures

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/qcentroid-enters-aviation-and-telecommunication-consortia-to-deploy-quantumops-infrastructures/) on June 25, 2026.

Enterprise platform developer QCentroid has joined two major industrial research initiatives in Spain designed to transition quantum and hybrid computing workflows out of laboratory environments into mission-critical applications. Under the first framework, QCentroid Labs has paired with aerospace manufacturer Boeing to resolve the dense computational optimization barriers associated with integrating autonomous flight networks into urban [...] The post QCentroid Enters Aviation and Telecommunication Consortia to Deploy QuantumOps Infrastructures appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/qcentroid-enters-aviation-and-telecommunication-consortia-to-deploy-quantumops-infrastructures/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Welinq Integrates araQne Distributed Quantum Compiler with NVIDIA CUDA-Q for GPU-Accelerated Circuit Verification]]></title>
            <link>https://quantumcomputinginfo.com/blog/welinq-integrates-araqne-distributed-quantum-compiler-with-nvidia-cuda-q-for-gpu-accelerated-circuit-verification-1b3881</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/welinq-integrates-araqne-distributed-quantum-compiler-with-nvidia-cuda-q-for-gpu-accelerated-circuit-verification-1b3881</guid>
            <pubDate>Wed, 24 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum networking company Welinq has integrated its distributed quantum compiler, araQne, with the NVIDIA CUDA-Q hybrid quantum-classical software platform. En...]]></description>
            <content:encoded><![CDATA[
# Welinq Integrates araQne Distributed Quantum Compiler with NVIDIA CUDA-Q for GPU-Accelerated Circuit Verification

> **Source:** Originally published on [Quantum Computing Report](https://quantumcomputingreport.com/welinq-integrates-araqne-distributed-quantum-compiler-with-nvidia-cuda-q-for-gpu-accelerated-circuit-verification/) on June 25, 2026.

Quantum networking company Welinq has integrated its distributed quantum compiler, araQne, with the NVIDIA CUDA-Q hybrid quantum-classical software platform. Engineered to partition, map, and orchestrate monolithic quantum algorithms across heterogeneous processors, araQne addresses the hardware scaling limits of individual, isolated devices. The structural integration with NVIDIA CUDA-Q establishes a unified compilation-to-verification workflow, allowing developers to [...] The post Welinq Integrates araQne Distributed Quantum Compiler with NVIDIA CUDA-Q for GPU-Accelerated Circuit Verification appeared first on Quantum Computing Report....

---

To read the full article, visit the original source page:

[Read the full article on Quantum Computing Report →](https://quantumcomputingreport.com/welinq-integrates-araqne-distributed-quantum-compiler-with-nvidia-cuda-q-for-gpu-accelerated-circuit-verification/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[A Hybrid Quantum-Classical Approach for Melt Pool Prediction in Laser Powder Bed Fusion]]></title>
            <link>https://quantumcomputinginfo.com/blog/a-hybrid-quantum-classical-approach-for-melt-pool-prediction-in-laser-powder-bed-fusion-6c5401</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/a-hybrid-quantum-classical-approach-for-melt-pool-prediction-in-laser-powder-bed-fusion-6c5401</guid>
            <pubDate>Wed, 24 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2606.23719v1 Announce Type: new Abstract: Laser powder bed fusion (LPBF) is a promising additive manufacturing technique that suffers from quality assuran...]]></description>
            <content:encoded><![CDATA[
# A Hybrid Quantum-Classical Approach for Melt Pool Prediction in Laser Powder Bed Fusion

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2606.23719) on June 24, 2026.

arXiv:2606.23719v1 Announce Type: new Abstract: Laser powder bed fusion (LPBF) is a promising additive manufacturing technique that suffers from quality assurance concerns. Predicting melt pools from process parameters is crucial for assessing quality prior to manufacturing but remains a difficult problem because of the complex physical processes underlying LPBF. Quantum computers present a new computing paradigm, providing a new approach to information processing using quantum entanglement and superposition. This paper presents a practical demonstration of a hybrid quantum-classical model that leverages quantum computing to improve process parameter feature extraction with a quantum feature encoder. To make the quantum approach computationally feasible for large datasets, we first employ ...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2606.23719)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Certifying Quantum Optimization and Circuit Cutting by Using Quantum-Classical Moment Duality]]></title>
            <link>https://quantumcomputinginfo.com/blog/certifying-quantum-optimization-and-circuit-cutting-by-using-quantum-classical-moment-duality-0499d3</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/certifying-quantum-optimization-and-circuit-cutting-by-using-quantum-classical-moment-duality-0499d3</guid>
            <pubDate>Wed, 24 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2606.23727v1 Announce Type: new Abstract: We establish a direct quantum-classical duality based on the degree-$2$ Sum-of-Squares (SoS) semidefinite progra...]]></description>
            <content:encoded><![CDATA[
# Certifying Quantum Optimization and Circuit Cutting by Using Quantum-Classical Moment Duality

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2606.23727) on June 24, 2026.

arXiv:2606.23727v1 Announce Type: new Abstract: We establish a direct quantum-classical duality based on the degree-$2$ Sum-of-Squares (SoS) semidefinite programming cone: the matrix of two-qubit Pauli-$Z$ correlation functions obtained from \emph\{any\} quantum state $\rho$ is automatically a feasible point of the classical Goemans-Williamson (GW) relaxation. This observation provides a universal ``safety net'' for quantum optimization algorithms: applying GW random hyperplane rounding to the quantum-driven moment matrix yields a certified expected cut value $\mathbb\{E\}[\mathrm\{Cut\}] \ge \alpha_\{\mathrm\{GW\}\}\langle\mathcal\{H\}\rangle_\rho$, valid for every state produced by variational algorithms such as QAOA or the Variational Quantum Power Method (VQPM), regardless of convergen...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2606.23727)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Dimensionality Reduction of QAOA Parameter Space with Kernel PCA for Max-Cut]]></title>
            <link>https://quantumcomputinginfo.com/blog/dimensionality-reduction-of-qaoa-parameter-space-with-kernel-pca-for-max-cut-bb5f27</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/dimensionality-reduction-of-qaoa-parameter-space-with-kernel-pca-for-max-cut-bb5f27</guid>
            <pubDate>Wed, 24 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2606.23718v1 Announce Type: new Abstract: The Quantum Approximate Optimization Algorithm (QAOA) is a leading variational algorithm for combinatorial optim...]]></description>
            <content:encoded><![CDATA[
# Dimensionality Reduction of QAOA Parameter Space with Kernel PCA for Max-Cut

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2606.23718) on June 24, 2026.

arXiv:2606.23718v1 Announce Type: new Abstract: The Quantum Approximate Optimization Algorithm (QAOA) is a leading variational algorithm for combinatorial optimization on near term quantum devices. As circuit depth increases, the number of optimization parameters grows, making the search landscape increasingly nonlinear and difficult to optimize. Previous studies have shown that optimal QAOA parameters often lie on a low dimensional manifold that can be approximated using Principal Component Analysis (PCA) at shallow circuit depths. However, the effectiveness of PCA decreases at higher depths because the underlying parameter manifold becomes increasingly nonlinear. In this work, we investigate Kernel Principal Component Analysis (KPCA) with a radial basis function kernel as a nonlinear dim...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2606.23718)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum-enhanced estimation of stimulated Raman optical activity]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-enhanced-estimation-of-stimulated-raman-optical-activity-53a8b5</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-enhanced-estimation-of-stimulated-raman-optical-activity-53a8b5</guid>
            <pubDate>Wed, 24 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2606.23722v1 Announce Type: new Abstract: In recent times there has been growing interest in Raman optical activity (ROA) for its label free detection of...]]></description>
            <content:encoded><![CDATA[
# Quantum-enhanced estimation of stimulated Raman optical activity

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2606.23722) on June 24, 2026.

arXiv:2606.23722v1 Announce Type: new Abstract: In recent times there has been growing interest in Raman optical activity (ROA) for its label free detection of absolute configuration, conformation, and stereochemical structure in chiral biosamples and drug molecules. Since ROA signals are generally small, techniques such as stimulation by a probe beam can be used to enhance the signal strength. However, with a classical probe, the measurement precision is still fundamentally limited by its shot noise. To solve this problem we propose the use of two-mode squeezed vacuum and show that it can achieve sub-shot noise limited measurement sensitivity. Using quantum estimation theory, we derived the quantum Fisher information and the quantum Cram\'er-Rao bound (QCRB) for stimulated ROA measurement...

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2606.23722)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Ultra-Low-Rate Information Reconciliation: Repetition Coding or Dedicated Codes?]]></title>
            <link>https://quantumcomputinginfo.com/blog/ultra-low-rate-information-reconciliation-repetition-coding-or-dedicated-codes-9e2b45</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ultra-low-rate-information-reconciliation-repetition-coding-or-dedicated-codes-9e2b45</guid>
            <pubDate>Wed, 24 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[arXiv:2606.23726v1 Announce Type: new Abstract: We compare repetition-based ultra-low-rate information reconciliation with dedicated ultra-low-rate codes for CV...]]></description>
            <content:encoded><![CDATA[
# Ultra-Low-Rate Information Reconciliation: Repetition Coding or Dedicated Codes?

> **Source:** Originally published on [arXiv quant-ph](https://arxiv.org/abs/2606.23726) on June 24, 2026.

arXiv:2606.23726v1 Announce Type: new Abstract: We compare repetition-based ultra-low-rate information reconciliation with dedicated ultra-low-rate codes for CV-QKD. Repetition coding offers a favorable performance-complexity trade-off, incurring only a moderate error-rate penalty while reducing decoding complexity by $2\times$, making it attractive for implementation-constrained systems.

---

To read the full article, visit the original source page:

[Read the full article on arXiv quant-ph →](https://arxiv.org/abs/2606.23726)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[SpaceX wants to build AI data centers in space. Will it work?]]></title>
            <link>https://quantumcomputinginfo.com/blog/spacex-wants-to-build-ai-data-centers-in-space-will-it-work-145ee9</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/spacex-wants-to-build-ai-data-centers-in-space-will-it-work-145ee9</guid>
            <pubDate>Fri, 19 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[The race to build data centers in space is gaining momentum as AI drives unprecedented demand for computing power. Orbital facilities could tap into abundant so...]]></description>
            <content:encoded><![CDATA[
# SpaceX wants to build AI data centers in space. Will it work?

> **Source:** Originally published on [ScienceDaily Quantum Computers](https://www.sciencedaily.com/releases/2026/06/260618041501.htm) on June 19, 2026.

The race to build data centers in space is gaining momentum as AI drives unprecedented demand for computing power. Orbital facilities could tap into abundant solar energy and avoid many of the environmental challenges faced on Earth. Yet space remains a harsh and expensive place to operate, with major hurdles including cooling, maintenance, radiation exposure, and orbital debris.

---

To read the full article, visit the original source page:

[Read the full article on ScienceDaily Quantum Computers →](https://www.sciencedaily.com/releases/2026/06/260618041501.htm)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum Computing Careers: Roles, Skills, and How to Get Started]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-computing-careers</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-computing-careers</guid>
            <pubDate>Thu, 18 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[A comprehensive career guide for quantum computing — explore the roles, required skills, learning resources, and companies hiring in this rapidly growing field.]]></description>
            <content:encoded><![CDATA[
# Quantum Computing Careers: Roles, Skills, and How to Get Started

Quantum computing is rapidly transitioning from a research curiosity to a burgeoning industry. As companies like IBM, Google, Microsoft, Amazon, and dozens of startups invest billions in quantum technology, the demand for quantum-skilled professionals is growing faster than the talent pool can supply. Whether you're a student, a software developer, a physicist, or a career changer, there's a path into quantum computing for you.

## The Quantum Job Market in 2026

The quantum computing job market has expanded significantly over the past few years. According to industry estimates, the global quantum computing workforce needs are projected to reach tens of thousands of positions by 2030. Currently, there's a notable talent gap — companies report difficulty finding qualified candidates across nearly every quantum-related role.

**Key trends:**
- Demand for quantum software developers is growing faster than for quantum hardware researchers
- Hybrid roles that combine quantum computing with domain expertise (chemistry, finance, logistics) are increasingly valued
- Remote work has opened quantum positions to a global talent pool
- Many companies are willing to train strong candidates from adjacent fields

## Career Paths in Quantum Computing

### 1. Quantum Research Scientist

**What you do**: Conduct fundamental research in quantum information theory, develop new quantum algorithms, prove theoretical results, and publish papers.

**Typical employers**: Universities, national labs (Sandia, Oak Ridge, NIST), corporate research labs (IBM Research, Google Quantum AI, Microsoft Research)

**Required background**:
- PhD in physics, computer science, mathematics, or related field
- Deep knowledge of quantum information theory
- Strong publication record
- Expertise in areas like error correction, complexity theory, or quantum algorithms

**Salary range**: $100,000 – $200,000+ (varies significantly by sector and location)

### 2. Quantum Software Engineer

**What you do**: Build quantum applications, develop quantum SDKs and compilers, create circuit optimization tools, and integrate quantum modules into classical software systems.

**Typical employers**: IBM, Google, Amazon (Braket), IonQ, Rigetti, Quantinuum, Xanadu, and numerous startups

**Required skills**:
- Strong programming skills (Python is essential; C++ and Rust are valuable)
- Familiarity with quantum computing frameworks (Qiskit, Cirq, PennyLane, Amazon Braket)
- Understanding of quantum algorithms and circuit design
- Classical software engineering best practices (testing, CI/CD, documentation)

**Salary range**: $120,000 – $250,000+

### 3. Quantum Hardware Engineer

**What you do**: Design, fabricate, and operate quantum processors. This includes cryogenic engineering, microwave electronics, laser systems, vacuum systems, and qubit fabrication.

**Typical employers**: IBM, Google, Rigetti, IonQ, Quantinuum, PsiQuantum, QuEra, Atom Computing

**Required background**:
- PhD or MS in experimental physics, electrical engineering, or materials science
- Hands-on experience with relevant hardware (cryogenics, RF electronics, optics)
- Clean room experience for fabrication roles
- Strong lab skills and attention to detail

**Salary range**: $110,000 – $220,000+

### 4. Quantum Applications Scientist

**What you do**: Apply quantum computing to real-world problems in specific domains like drug discovery, materials science, financial modeling, cryptography, or machine learning.

**Typical employers**: Pharmaceutical companies, financial institutions, consulting firms (McKinsey Quantum, BCG), quantum software startups

**Required skills**:
- Domain expertise in one or more application areas
- Understanding of quantum algorithms relevant to your domain
- Ability to translate business problems into quantum formulations
- Strong communication skills (bridging technical and business audiences)

**Salary range**: $120,000 – $230,000+

### 5. Quantum Error Correction Engineer

**What you do**: Design and implement quantum error correction codes, develop decoders, and optimize the error correction pipeline for specific hardware platforms.

**Required skills**:
- Deep understanding of QEC theory (surface codes, color codes, qLDPC codes)
- Algorithm development for real-time syndrome decoding
- Hardware-aware code optimization
- Strong mathematical background (algebra, topology, coding theory)

**Salary range**: $130,000 – $250,000+

### 6. Quantum Education and Outreach

**What you do**: Create educational content, teach quantum computing courses, develop curricula, write textbooks, or manage community programs.

**Typical employers**: Universities, IBM Quantum, Google, Q-CTRL, quantum education startups

**Required skills**:
- Strong understanding of quantum computing concepts
- Excellent communication and writing skills
- Teaching experience
- Content creation abilities (writing, video, interactive demos)

**Salary range**: $70,000 – $150,000+

## Essential Skills

Regardless of your specific role, certain skills are foundational for a career in quantum computing:

### Mathematics
- **Linear algebra**: Vectors, matrices, eigenvalues, tensor products — the language of quantum computing
- **Probability and statistics**: Understanding measurement outcomes and error analysis
- **Complex numbers**: Quantum amplitudes are complex-valued
- **Group theory**: Important for understanding symmetries in quantum systems

### Physics
- **Quantum mechanics**: At minimum, the postulates of quantum mechanics and the qubit model
- **Quantum information theory**: Entanglement, decoherence, quantum channels
- **Condensed matter physics**: Useful for hardware roles

### Computer Science
- **Python programming**: The lingua franca of quantum computing
- **Algorithm design**: Understanding complexity, data structures, and algorithmic thinking
- **Classical computing architecture**: How quantum and classical systems integrate

### Soft Skills
- **Communication**: Quantum computing is interdisciplinary; you must explain concepts to diverse audiences
- **Collaboration**: Teams span physics, engineering, CS, and domain sciences
- **Adaptability**: The field moves fast — be ready to learn new concepts constantly

## Learning Resources

### Free Online Courses

1. **IBM Quantum Learning** (learning.quantum.ibm.com)
   - Comprehensive, hands-on courses using Qiskit
   - Covers basics through advanced topics
   - Free access to real quantum hardware

2. **Qiskit Textbook** (qiskit.org/learn)
   - Interactive Jupyter notebook-based textbook
   - Covers quantum computing from scratch
   - Excellent for self-study

3. **MIT OpenCourseWare — Quantum Information Science**
   - Rigorous academic course materials
   - Includes problem sets and lecture notes

4. **Brilliant.org — Quantum Computing**
   - Interactive, visual explanations
   - Great for building intuition

### Textbooks

- **"Quantum Computation and Quantum Information" by Nielsen & Chuang**: The "bible" of quantum computing. Comprehensive and rigorous.
- **"An Introduction to Quantum Computing" by Kaye, Laflamme, and Mosca**: More accessible introduction with a CS perspective.
- **"Programming Quantum Computers" by Johnston, Harrigan, and Gimeno-Segovia**: Practical, code-focused approach.
- **"Quantum Computing: An Applied Approach" by Hidary**: Bridges theory and application nicely.

### Certifications and Programs

- **IBM Quantum Developer Certification**: Industry-recognized credential demonstrating Qiskit proficiency
- **Google Quantum AI Research Programs**: Summer internships and residencies
- **Various university Master's programs**: An increasing number of universities offer specialized quantum computing degrees

## Companies Hiring in Quantum Computing

### Major Tech Companies
- **IBM**: Largest quantum team, diverse roles from hardware to software to research
- **Google Quantum AI**: Cutting-edge research, strong focus on error correction
- **Microsoft**: Topological quantum computing, Azure Quantum platform
- **Amazon (AWS)**: Braket platform, quantum networking research (Center for Quantum Computing)
- **Intel**: Quantum hardware research (silicon spin qubits)

### Pure-Play Quantum Companies
- **IonQ**: Trapped-ion quantum computers, publicly traded
- **Rigetti**: Superconducting quantum computers and cloud platform
- **Quantinuum** (Honeywell): Trapped-ion systems with industry-leading fidelities
- **Xanadu**: Photonic quantum computing, PennyLane framework
- **PsiQuantum**: Photonic quantum computing at scale
- **QuEra**: Neutral atom quantum computers
- **Atom Computing**: Nuclear spin qubits in optical arrays
- **D-Wave**: Quantum annealing (different paradigm)
- **Q-CTRL**: Quantum control infrastructure and firmware

### Quantum Software Startups
- **Zapata AI**: Quantum-enhanced AI and generative modeling
- **Classiq**: Quantum software development platform
- **QC Ware**: Quantum algorithms for enterprise
- **Strangeworks**: Quantum computing ecosystem platform
- **Multiverse Computing**: Quantum solutions for finance

### Companies Using Quantum Computing
- **JPMorgan Chase**: Quantum research for financial applications
- **Goldman Sachs**: Quantum algorithms for derivatives pricing
- **Merck, Roche, Biogen**: Quantum computing for drug discovery
- **BMW, Airbus**: Quantum optimization for manufacturing and logistics
- **ExxonMobil**: Quantum computing for energy applications

## Tips for Breaking In

1. **Start building now**: Create quantum circuits, contribute to open-source projects (Qiskit, Cirq, PennyLane), and build a portfolio
2. **Network actively**: Attend quantum computing conferences (APS March Meeting, QIP, IEEE Quantum Week), join online communities (Qiskit Slack, Quantum Computing Stack Exchange)
3. **Specialize wisely**: Pick a niche that combines quantum computing with your existing strengths
4. **Don't wait for perfection**: Many companies hire from adjacent fields and provide quantum training. If you have strong fundamentals in math, physics, or CS, you can learn quantum on the job
5. **Publish and share**: Blog about quantum computing, create tutorials, contribute to documentation. Public learning demonstrates both skill and communication ability
6. **Consider internships**: Many quantum companies offer internship programs — an excellent way to get your foot in the door

## The Future of Quantum Careers

The quantum computing industry is still in its early stages, which means tremendous opportunity for those who enter now. Early practitioners in any technology revolution disproportionately benefit from their head start. The skills you build today will compound as the industry grows.

Whether you aspire to advance fundamental science, build the next generation of computing hardware, write quantum software, or apply quantum computing to solve real-world problems, there has never been a better time to start your quantum journey.
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Quantum Gates and Circuits Explained]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-gates-circuits</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-gates-circuits</guid>
            <pubDate>Thu, 18 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[A comprehensive guide to quantum logic gates — Pauli gates, Hadamard, CNOT, Toffoli — and how they combine to form quantum circuits.]]></description>
            <content:encoded><![CDATA[
# Quantum Gates and Circuits Explained

In classical computing, **logic gates** like AND, OR, and NOT form the foundation of all computation. Every program, every application, and every digital operation ultimately reduces to combinations of these simple gates. Quantum computing has its own set of gates — **quantum gates** — that manipulate qubits instead of bits. Understanding these gates is essential to understanding how quantum algorithms work.

## What Is a Quantum Gate?

A quantum gate is an operation that transforms the state of one or more qubits. Mathematically, quantum gates are represented by **unitary matrices** — matrices U that satisfy U†U = I, where U† is the conjugate transpose and I is the identity matrix.

This unitarity condition has a profound consequence: **all quantum gates are reversible**. Every quantum operation can be undone. This is fundamentally different from classical computing, where gates like AND and OR are irreversible — you can't determine the inputs from the output alone.

## Single-Qubit Gates

Single-qubit gates transform the state of one qubit. They correspond to 2×2 unitary matrices and can be visualized as rotations on the Bloch sphere.

### Pauli-X Gate (Quantum NOT)

The **X gate** is the quantum version of the classical NOT gate. It flips |0⟩ to |1⟩ and |1⟩ to |0⟩:

```math
X = [0  1]
    [1  0]
```

`X|0⟩ = |1⟩, X|1⟩ = |0⟩`

On the Bloch sphere, the X gate performs a **180° rotation around the X-axis**, swapping the north and south poles.

### Pauli-Y Gate

The **Y gate** combines a bit flip with a phase change:

```math
Y = [0 -i]
    [i  0]
```

`Y|0⟩ = i|1⟩, Y|1⟩ = -i|0⟩`

Geometrically, this is a **180° rotation around the Y-axis** of the Bloch sphere.

### Pauli-Z Gate (Phase Flip)

The **Z gate** leaves |0⟩ unchanged but adds a negative phase to |1⟩:

```math
Z = [1  0]
    [0 -1]
```

`Z|0⟩ = |0⟩, Z|1⟩ = -|1⟩`

This is a **180° rotation around the Z-axis**. While it doesn't change measurement probabilities (|−1|² = 1), the phase change affects how the qubit interferes with other qubits — a crucial distinction in quantum computing.

### Hadamard Gate (H)

The **Hadamard gate** is arguably the most important single-qubit gate. It creates superposition from basis states:

```math
H = 1/sqrt(2) * [1  1]
                [1 -1]
```

`H|0⟩ = 1/sqrt(2) * (|0⟩ + |1⟩) = |+⟩`

`H|1⟩ = 1/sqrt(2) * (|0⟩ - |1⟩) = |-⟩`

The Hadamard gate appears at the beginning of nearly every quantum algorithm. Applying H to n qubits initialized to |0⟩ creates an equal superposition over all 2ⁿ computational basis states — the starting point for quantum parallelism.

**Key property**: H is its own inverse. Applying H twice returns the qubit to its original state: HH = I.

### S Gate (Phase Gate) and T Gate

The **S gate** adds a 90° phase to |1⟩:

```math
S = [1  0]
    [0  i]
```

The **T gate** adds a 45° phase:

```math
T = [1      0   ]
    [0  e^(iπ/4)]
```

These gates are important for constructing more complex operations. The set {H, T, CNOT} forms a **universal gate set**, meaning any quantum computation can be approximated to arbitrary precision using only these three gates.

## Multi-Qubit Gates

Multi-qubit gates operate on two or more qubits simultaneously and are essential for creating **entanglement** — the quintessential quantum resource.

### CNOT Gate (Controlled-NOT)

The **CNOT** (or CX) gate is the most important two-qubit gate. It has a **control qubit** and a **target qubit**. If the control is |1⟩, the target is flipped; if the control is |0⟩, nothing happens:

```math
CNOT = [1 0 0 0]
       [0 1 0 0]
       [0 0 0 1]
       [0 0 1 0]
```

| Input | Output |
|-------|--------|
| \|00⟩ | \|00⟩ |
| \|01⟩ | \|01⟩ |
| \|10⟩ | \|11⟩ |
| \|11⟩ | \|10⟩ |

**Creating entanglement**: Apply H to the first qubit, then CNOT:

`CNOT(H ⊗ I)|00⟩ = CNOT * 1/sqrt(2) * (|00⟩ + |10⟩) = 1/sqrt(2) * (|00⟩ + |11⟩)`

This produces a **Bell state** — a maximally entangled state of two qubits. The two qubits are now perfectly correlated: measuring one immediately determines the other.

### Controlled-Z Gate (CZ)

The **CZ gate** applies a Z gate to the target qubit if the control qubit is |1⟩:

```math
CZ = [1 0 0  0]
     [0 1 0  0]
     [0 0 1  0]
     [0 0 0 -1]
```

Unlike CNOT, the CZ gate is **symmetric** — it doesn't matter which qubit is the control and which is the target. CZ only adds a phase of −1 when both qubits are |1⟩.

### SWAP Gate

The **SWAP gate** exchanges the states of two qubits:

`SWAP|01⟩ = |10⟩`

It can be decomposed into three CNOT gates, which is useful when the quantum hardware doesn't natively support SWAP operations.

### Toffoli Gate (CCNOT)

The **Toffoli gate** (or CCX) is a three-qubit gate with two controls and one target. The target flips only when **both** controls are |1⟩:

| Input | Output |
|-------|--------|
| \|000⟩ | \|000⟩ |
| \|010⟩ | \|010⟩ |
| \|100⟩ | \|100⟩ |
| \|110⟩ | \|111⟩ |
| \|111⟩ | \|110⟩ |

The Toffoli gate is **universal for classical computation** — you can build any classical logic circuit using only Toffoli gates. Combined with the Hadamard gate, it becomes universal for quantum computation as well.

### Fredkin Gate (Controlled-SWAP)

The **Fredkin gate** (or CSWAP) swaps two target qubits when the control qubit is |1⟩. Like the Toffoli gate, it's also universal for classical computation.

## Quantum Circuits

A **quantum circuit** is a sequence of quantum gates applied to a set of qubits, typically read from left to right. Quantum circuits are the primary model for describing quantum algorithms.

### Circuit Notation

In quantum circuit diagrams:

- **Horizontal lines** represent qubits (wires)
- **Boxes** represent gates (e.g., H, X, Z)
- **Vertical lines with dots** represent controlled operations
- **Meter symbols** represent measurement
- Time flows **left to right**

### Example: Creating a Bell State

The simplest entanglement circuit uses just two gates:

```
q₀: ─[H]─●─
          │
q₁: ─────⊕─
```

1. Apply Hadamard (H) to qubit 0, creating superposition
2. Apply CNOT with qubit 0 as control and qubit 1 as target, creating entanglement

Starting from |00⟩, this produces the Bell state (|00⟩ + |11⟩)/√2.

### Circuit Composition Rules

When building quantum circuits, keep these principles in mind:

1. **Qubits start in |0⟩** by convention (unless otherwise initialized)
2. **Gates are unitary**: Every gate must be a valid unitary transformation
3. **Measurement is terminal**: Once measured, a qubit collapses and (typically) no further quantum operations are applied
4. **No cloning**: You cannot copy quantum information using a circuit
5. **Depth matters**: Circuit depth (longest path from input to output) determines execution time and error accumulation

### Universal Gate Sets

A set of gates is **universal** if any unitary transformation can be approximated to arbitrary accuracy using gates from that set. Common universal gate sets include:

- **{H, T, CNOT}** — The standard universal set
- **{H, Toffoli}** — An alternative with a three-qubit gate
- **{Rx, Ry, CNOT}** — Rotation-based universal set (common in variational algorithms)

In practice, quantum hardware implements a specific set of native gates, and compilers decompose high-level operations into these native gates.

## From Gates to Algorithms

Quantum algorithms are sophisticated circuits that exploit superposition, entanglement, and interference to solve specific problems:

- **Deutsch-Jozsa algorithm**: Uses Hadamard gates and an oracle to determine if a function is constant or balanced — with just one query
- **Grover's algorithm**: Uses Hadamard gates, oracle queries, and diffusion operators to search an unsorted database with quadratic speedup
- **Quantum Fourier Transform (QFT)**: Uses Hadamard and controlled-phase gates — a key subroutine in Shor's factoring algorithm
- **Variational algorithms (VQE, QAOA)**: Use parameterized rotation gates optimized by classical computers

## Practical Considerations

On real quantum hardware, gates aren't perfect:

- **Gate errors**: Physical imperfections mean each gate has a small probability of error (typically 0.1–1% for two-qubit gates)
- **Decoherence**: Qubits lose their quantum properties over time, limiting circuit depth
- **Connectivity**: Not all qubits can directly interact; SWAP gates may be needed, adding depth and errors
- **Compilation**: High-level gates must be decomposed into the hardware's native gate set

Understanding quantum gates and circuits provides the vocabulary for reading, writing, and designing quantum algorithms. Whether you're simulating molecules, breaking codes, or searching databases, it all comes down to the right sequence of quantum gates.
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Understanding Qubits: The Heart of Quantum Computing]]></title>
            <link>https://quantumcomputinginfo.com/blog/understanding-qubits</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/understanding-qubits</guid>
            <pubDate>Thu, 18 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[A deep dive into quantum bits (qubits) — from the Bloch sphere representation to the different physical implementations powering today's quantum computers.]]></description>
            <content:encoded><![CDATA[
# Understanding Qubits: The Heart of Quantum Computing

At the core of every quantum computer lies the **qubit** — the quantum analogue of the classical bit. While the concept may sound simple, qubits are remarkably rich mathematical objects with physical implementations that push the boundaries of modern engineering. In this article, we'll explore qubits from every angle: their mathematical description, geometric visualization, the measurement process, and the cutting-edge hardware used to build them.

## Bits vs. Qubits

A classical **bit** is a binary variable. It's either 0 or 1 — like a light switch that's either off or on. All of classical computation, from simple arithmetic to streaming video, reduces to manipulating vast numbers of these binary values.

A **qubit** (quantum bit) transcends this binary limitation. A qubit can exist in state |0⟩, state |1⟩, or any **superposition** of the two:

`|ψ⟩ = α|0⟩ + β|1⟩`

where α and β are complex-valued probability amplitudes satisfying |α|² + |β|² = 1.

This means a single qubit carries more information than a single classical bit — not in terms of what you can extract through measurement (you still get only 0 or 1), but in terms of the computational pathways available during processing.

### Key Differences at a Glance

| Property | Classical Bit | Qubit |
|----------|--------------|-------|
| Possible values | 0 or 1 | Continuum of superposition states |
| Representation | Voltage level, magnetic orientation | Quantum state vector |
| Copying | Freely copied | Cannot be copied (no-cloning theorem) |
| Observation | Non-destructive | Measurement collapses superposition |
| Combined states | n bits → n values | n qubits → 2ⁿ simultaneous amplitudes |

## The Bloch Sphere

The state of a single qubit can be beautifully visualized using the **Bloch sphere** — a unit sphere where every point on the surface represents a valid qubit state.

Any single-qubit pure state can be parameterized as:

`|ψ⟩ = cos(θ/2)|0⟩ + e^(iφ)sin(θ/2)|1⟩`

where:
- **θ** (theta) is the polar angle from the +Z axis (0 ≤ θ ≤ π)
- **φ** (phi) is the azimuthal angle in the XY plane (0 ≤ φ < 2π)

### Key Points on the Bloch Sphere

- **North pole** (θ = 0): State |0⟩
- **South pole** (θ = π): State |1⟩
- **Equator** (θ = π/2): Equal superpositions with varying phase
  - +X axis: |+⟩ = (|0⟩ + |1⟩)/√2
  - −X axis: |−⟩ = (|0⟩ − |1⟩)/√2
  - +Y axis: |+i⟩ = (|0⟩ + i|1⟩)/√2
  - −Y axis: |−i⟩ = (|0⟩ − i|1⟩)/√2

Quantum gates correspond to **rotations** on the Bloch sphere. The Pauli-X gate rotates 180° around the X axis, the Hadamard gate rotates 180° around the axis bisecting X and Z, and so on. This geometric picture makes it intuitive to reason about how gates transform qubit states.

## Measurement: Collapsing the Quantum State

Measurement is where quantum mechanics gets truly strange. When you **measure** a qubit in superposition, the superposition **collapses** to one of the basis states.

For a qubit in state |ψ⟩ = α|0⟩ + β|1⟩:
- You get outcome **0** with probability |α|²
- You get outcome **1** with probability |β|²

After measurement, the qubit is **no longer** in superposition — it's definitively in the measured state. This is irreversible. You cannot recover the original superposition after measuring.

### The Measurement Problem

This collapse is one of the deepest mysteries in physics. Some key aspects:

1. **Probabilistic outcomes**: Unlike classical physics, quantum measurement is fundamentally random. You cannot predict which outcome you'll get — only the probabilities.
2. **No-cloning theorem**: You cannot copy an unknown quantum state. This means you can't make multiple copies to "try" different measurements.
3. **Measurement basis matters**: You can measure in different bases. Measuring a |+⟩ state in the Z-basis (standard) gives random 0 or 1. Measuring it in the X-basis always gives +.

This is why quantum algorithms must be cleverly designed — they use **interference** to make the correct answer highly probable before the final measurement.

## Physical Implementations of Qubits

Building actual qubits is one of the greatest engineering challenges of our time. A qubit must be an isolated quantum system that can maintain superposition long enough to perform computations while also being controllable and readable. Here are the leading approaches:

### 1. Superconducting Qubits

**Used by**: IBM, Google, Rigetti, Amazon (Braket)

Superconducting qubits are tiny circuits made from superconducting materials (typically aluminum on silicon) cooled to near absolute zero (~15 millikelvin, colder than outer space). They use **Josephson junctions** — thin insulating barriers between superconductors — to create an artificial atom with quantized energy levels.

**How they work**: The two lowest energy levels of the circuit serve as |0⟩ and |1⟩. Microwave pulses at precisely tuned frequencies drive transitions between these states, implementing quantum gates.

**Advantages**:
- Fast gate operations (~10-100 nanoseconds)
- Fabricated using established semiconductor manufacturing techniques
- Highly scalable chip-based architecture
- Well-developed control electronics

**Challenges**:
- Require extreme cooling (dilution refrigerators)
- Relatively short coherence times (~100-300 microseconds)
- Sensitive to electromagnetic noise
- Qubit-to-qubit variability in fabrication

### 2. Trapped Ion Qubits

**Used by**: IonQ, Quantinuum (Honeywell), Alpine Quantum Technologies

Trapped ion quantum computers use individual atoms (typically ytterbium-171 or barium-133) suspended in electromagnetic traps in a vacuum chamber. The qubit states are encoded in the atom's internal energy levels.

**How they work**: Laser pulses manipulate the ions' quantum states. Two-qubit gates are implemented through the shared motional modes of ions in the trap — essentially using the vibrations of the ion chain to mediate interactions.

**Advantages**:
- Extremely long coherence times (seconds to minutes)
- Very high gate fidelities (>99.9% for single-qubit gates)
- All-to-all connectivity (any qubit can interact with any other)
- Identical qubits (atoms are naturally identical)

**Challenges**:
- Slower gate operations (~1-100 microseconds)
- Scaling beyond a few dozen ions in a single trap is difficult
- Complex laser systems required
- Shuttle-based architectures needed for large scales

### 3. Photonic Qubits

**Used by**: Xanadu, PsiQuantum, Quandela

Photonic quantum computers encode information in properties of individual photons — such as polarization, path, or time-bin encoding. Horizontal polarization might represent |0⟩ and vertical polarization |1⟩.

**How they work**: Beam splitters, phase shifters, and photon detectors form the quantum gates. Single-qubit operations are straightforward, but two-qubit gates are probabilistic, requiring measurement-based schemes.

**Advantages**:
- Operate at room temperature
- Natural compatibility with quantum communication networks
- Low decoherence (photons interact weakly with the environment)
- High-speed processing at the speed of light

**Challenges**:
- Probabilistic two-qubit gates reduce efficiency
- Single-photon sources and detectors are imperfect
- Photon loss is a significant challenge
- Requires large optical setups or integrated photonic chips

### 4. Topological Qubits

**Used by**: Microsoft

Topological qubits encode information in the global properties of exotic quasiparticles called **non-Abelian anyons** (such as Majorana fermions). The idea is that quantum information is protected by the topology of these particles' worldlines, making it inherently resistant to local noise.

**Advantages**:
- Intrinsic error protection from topological encoding
- Potentially much lower error correction overhead
- Could enable more practical large-scale quantum computers

**Challenges**:
- Experimental realization has proven extremely difficult
- Only recently has Microsoft demonstrated initial Majorana-based qubits
- Still in early stages compared to other approaches

### 5. Neutral Atom Qubits

**Used by**: QuEra, Pasqal, Atom Computing

Neutral atom quantum computers trap individual atoms using focused laser beams (optical tweezers) in programmable arrays. Qubit states are encoded in hyperfine ground states or Rydberg states.

**Advantages**:
- Scalable to hundreds or thousands of qubits
- Reconfigurable qubit connectivity
- Long coherence times
- Identical qubits (like trapped ions)

**Challenges**:
- Rydberg-based gates have fidelity limitations
- Atom loss during operation
- Complex optical systems required

## Qubit Quality Metrics

Not all qubits are created equal. Key metrics for evaluating qubit quality include:

- **Coherence time (T1, T2)**: How long a qubit maintains its quantum state before decoherence destroys the information
- **Gate fidelity**: How accurately a quantum gate performs the intended operation (>99% is considered good, >99.9% is excellent)
- **Connectivity**: Which qubits can directly interact with which other qubits
- **Readout fidelity**: How accurately you can measure the qubit's final state

## The Road Ahead

The quest for better qubits is the defining challenge of quantum computing. Each physical platform has its strengths, and it's not yet clear which will "win" — if indeed any single approach dominates. The most likely future involves **heterogeneous quantum computing**, combining different qubit technologies for different tasks.

What's certain is that as qubit quality and quantity improve, quantum computers will unlock capabilities that are simply impossible for classical machines. Understanding qubits — their mathematics, their measurement, and their physical implementations — is the first step toward understanding this quantum future.
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[What Is Quantum Computing? A Complete Beginner's Guide]]></title>
            <link>https://quantumcomputinginfo.com/blog/what-is-quantum-computing</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/what-is-quantum-computing</guid>
            <pubDate>Thu, 18 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[A comprehensive introduction to quantum computing covering qubits, superposition, entanglement, quantum gates, and the current state of the field.]]></description>
            <content:encoded><![CDATA[
# What Is Quantum Computing? A Complete Beginner's Guide

Quantum computing is one of the most exciting and transformative technologies of the 21st century. While classical computers have powered the digital revolution for decades, quantum computers promise to solve problems that would take even the most powerful supercomputers millions of years. But what exactly is quantum computing, and why does it matter?

## Classical Computing vs. Quantum Computing

To understand quantum computing, it helps to first understand how classical computers work. Classical computers process information using **bits** — tiny switches that can be either **0** or **1**. Every operation your laptop performs, from browsing the web to running complex simulations, is ultimately a sequence of operations on these binary digits.

Quantum computers, on the other hand, use **quantum bits**, or **qubits**. Unlike classical bits, qubits leverage the principles of quantum mechanics to process information in fundamentally different ways. This isn't just a faster version of classical computing — it's an entirely different paradigm.

| Feature | Classical Computing | Quantum Computing |
|---------|-------------------|-------------------|
| Basic unit | Bit (0 or 1) | Qubit (superposition of 0 and 1) |
| Processing | Sequential/parallel | Quantum parallelism |
| Key principles | Boolean logic | Superposition, entanglement, interference |
| Error rates | Very low | Currently high (improving rapidly) |
| Best for | General-purpose tasks | Specific complex problems |

## Qubits: The Building Blocks

A **qubit** is the fundamental unit of quantum information. While a classical bit is definitively 0 or 1, a qubit can exist in a **superposition** of both states simultaneously. We represent a qubit's state using **Dirac notation** (also called bra-ket notation):

`|ψ⟩ = α|0⟩ + β|1⟩`

Here, **α** and **β** are complex numbers called **probability amplitudes**. The probability of measuring the qubit as 0 is |α|², and the probability of measuring it as 1 is |β|². These probabilities must sum to 1:

`|α|² + |β|² = 1`

Think of a classical bit as a coin lying flat — it's either heads (0) or tails (1). A qubit is like a coin spinning in the air — it's in a combination of both states until it lands (is measured).

## Superposition: Being in Multiple States

**Superposition** is the property that allows a qubit to exist in a combination of |0⟩ and |1⟩ simultaneously. This is perhaps the most counterintuitive aspect of quantum computing for newcomers.

When we apply a **Hadamard gate** to a qubit initially in state |0⟩, we create an equal superposition:

`H|0⟩ = 1/sqrt(2) * (|0⟩ + |1⟩)`

This means the qubit has a 50% chance of being measured as 0 and a 50% chance of being measured as 1. The power of superposition becomes clear when we consider multiple qubits:

- **1 qubit** can represent 2 states simultaneously
- **2 qubits** can represent 4 states simultaneously
- **n qubits** can represent **2ⁿ states** simultaneously

This exponential scaling is what gives quantum computers their potential advantage. With just 300 qubits in full superposition, you could represent more states than there are atoms in the observable universe.

## Entanglement: Spooky Action at a Distance

**Quantum entanglement** is a phenomenon where two or more qubits become correlated in such a way that the quantum state of one qubit cannot be described independently of the others, regardless of the distance separating them. Einstein famously called this "spooky action at a distance."

When two qubits are entangled, measuring one qubit instantly determines the state of the other. For example, in the **Bell state**:

`|Φ⁺⟩ = 1/sqrt(2) * (|00⟩ + |11⟩)`

If you measure the first qubit and get |0⟩, the second qubit will also be |0⟩. If you measure |1⟩, the second will be |1⟩. This correlation holds no matter how far apart the qubits are.

Entanglement is a critical resource in quantum computing. It enables:

- **Quantum teleportation** — transferring quantum states between locations
- **Superdense coding** — sending two classical bits using one qubit
- **Quantum error correction** — protecting quantum information from noise
- **Quantum algorithms** — achieving speedups over classical approaches

## Quantum Gates: Manipulating Qubits

Just as classical computers use logic gates (AND, OR, NOT) to manipulate bits, quantum computers use **quantum gates** to manipulate qubits. Quantum gates are represented by **unitary matrices** and are reversible — you can always undo a quantum operation.

Some fundamental quantum gates include:

### Pauli-X Gate (Quantum NOT)
The X gate flips |0⟩ to |1⟩ and vice versa:
`X|0⟩ = |1⟩, X|1⟩ = |0⟩`

### Hadamard Gate (H)
Creates superposition from a basis state:
`H|0⟩ = 1/sqrt(2) * (|0⟩ + |1⟩)`

### CNOT Gate (Controlled-NOT)
A two-qubit gate that flips the target qubit if the control qubit is |1⟩. It's essential for creating entanglement:
`CNOT|10⟩ = |11⟩`

### Pauli-Z Gate
Adds a phase flip, leaving |0⟩ unchanged but mapping |1⟩ to −|1⟩:
`Z|1⟩ = -|1⟩`

## Quantum Interference

**Interference** is the mechanism by which quantum algorithms extract useful answers. Quantum states can interfere constructively (amplifying correct answers) or destructively (canceling wrong answers). Well-designed quantum algorithms carefully orchestrate interference patterns so that the probability of measuring the correct answer is maximized.

This is analogous to how waves work: when two waves meet, they can reinforce each other (constructive interference) or cancel each other out (destructive interference). Quantum algorithms use this principle to guide computation toward the desired solution.

## What Can Quantum Computers Do?

Quantum computers excel at specific types of problems:

- **Cryptography**: Shor's algorithm can factor large numbers exponentially faster than any known classical algorithm, threatening current encryption methods like RSA
- **Search**: Grover's algorithm provides a quadratic speedup for searching unsorted databases
- **Simulation**: Quantum computers can naturally simulate molecular and quantum systems, revolutionizing drug discovery and materials science
- **Optimization**: Quantum approaches show promise for solving complex optimization problems in logistics, finance, and machine learning
- **Machine Learning**: Quantum machine learning algorithms may provide advantages for certain pattern recognition tasks

## The Current State of Quantum Computing (2026)

The quantum computing landscape is advancing rapidly:

- **IBM** continues executing its quantum roadmap, pushing beyond 1,000+ qubit processors and developing error-corrected quantum systems
- **Google** demonstrated quantum error correction milestones with their surface code implementations
- **Microsoft** is advancing topological qubits through their Majorana-based approach
- **IonQ, Quantinuum**, and other companies are pushing trapped-ion quantum computers toward commercial viability
- **Startups** across the globe are developing quantum software, algorithms, and applications

We are currently in the **NISQ era** (Noisy Intermediate-Scale Quantum) — quantum computers with 50 to a few thousand qubits that are not yet fully error-corrected. The key challenge is reducing error rates and scaling up qubit counts to achieve **quantum advantage** — solving practical problems faster than any classical computer.

## Getting Started

If you're interested in quantum computing, here are some great next steps:

1. **Learn the basics** — Read our articles on [qubits](/articles/understanding-qubits) and [quantum gates](/articles/quantum-gates-circuits)
2. **Try coding** — Follow our [Qiskit tutorial](/tutorials/getting-started-with-qiskit) to build your first quantum circuit
3. **Explore the math** — Linear algebra is the language of quantum computing; focus on vectors, matrices, and complex numbers
4. **Join the community** — Platforms like IBM Quantum, Qiskit, and Cirq offer free access to real quantum hardware

Quantum computing isn't just a distant future technology — it's being built right now, and you can be part of it.
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[IBM Quantum Roadmap 2026: Error Correction, Starling Processors, and the Path to Quantum Advantage]]></title>
            <link>https://quantumcomputinginfo.com/blog/ibm-quantum-roadmap-2026</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/ibm-quantum-roadmap-2026</guid>
            <pubDate>Thu, 18 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[An overview of IBM's quantum computing roadmap for 2026 — covering the Starling and Blue Jay processors, error correction milestones, and Qiskit's evolving ecosystem.]]></description>
            <content:encoded><![CDATA[
# IBM Quantum Roadmap 2026: Error Correction, Starling Processors, and the Path to Quantum Advantage

IBM has been one of the most consistent and transparent players in the quantum computing industry, regularly publishing detailed hardware roadmaps that chart the course of their quantum ambitions. As we move through 2026, IBM's quantum program is entering a critical phase — transitioning from noisy, intermediate-scale quantum (NISQ) demonstrations to the era of **error-corrected quantum computing**.

## A Brief History of IBM's Quantum Roadmap

IBM's quantum journey has been marked by steady, methodical progress:

- **2019**: Launched the 27-qubit Falcon processor and IBM Quantum Network
- **2020**: Released the 65-qubit Hummingbird processor
- **2021**: Unveiled the 127-qubit Eagle processor — the first to break the 100-qubit barrier
- **2022**: Debuted the 433-qubit Osprey processor
- **2023**: Launched the 1,121-qubit Condor processor and the modular Heron processor (133 qubits with improved error rates)
- **2024**: Deployed Heron-based systems with enhanced error suppression and Qiskit 1.0
- **2025**: Introduced the Flamingo processor with quantum communication links and the Starling processor focused on error correction

## The 2026 Roadmap: Key Milestones

### Starling Processor: Error Correction at Scale

The **Starling** processor represents IBM's most significant step toward fault-tolerant quantum computing. Building on the modular architecture introduced with Heron and Flamingo, Starling is designed to demonstrate **practical quantum error correction** at a meaningful scale.

Key specifications of the Starling generation:

- **Error-corrected logical qubits**: Starling aims to demonstrate circuits running on logical qubits protected by surface codes and other error correction schemes
- **Improved physical qubit quality**: Two-qubit gate error rates pushed below 0.1%, a critical threshold for error correction overhead
- **Modular scaling**: Multiple Starling chips linked via quantum communication to create larger effective systems
- **Mid-circuit measurement**: Full support for measure-and-feed-forward operations essential for error correction

### Blue Jay: Looking Toward 2027

IBM has also previewed the **Blue Jay** processor, targeted for 2027, which aims to deliver:

- **Thousands of logical operations** on error-corrected qubits
- **100,000+ physical qubits** through modular chip interconnects
- **Quantum-centric supercomputing**: Tight integration of quantum and classical processors

## Qiskit Evolution

IBM's open-source software stack continues to mature alongside the hardware:

### Qiskit 2.0 Developments

- **Primitive-first execution model**: All circuit execution goes through the Sampler and Estimator primitives, providing a clean abstraction over diverse backends
- **Qiskit Transpiler Service**: Cloud-based circuit optimization that leverages AI to find optimal gate decompositions for specific hardware
- **Dynamic circuits**: Full support for mid-circuit measurement, conditional operations, and classical feed-forward — essential for error correction and teleportation protocols
- **Qiskit Serverless**: Managed infrastructure for running hybrid quantum-classical workloads at scale

### IBM Quantum Platform

The IBM Quantum Platform has evolved to support:

- **Fair-share queuing**: Improved access to quantum hardware for researchers and developers
- **Quantum runtime sessions**: Dedicated access windows for iterative algorithms like VQE
- **Error mitigation services**: Built-in techniques like zero-noise extrapolation and probabilistic error cancellation

## Error Correction: The Defining Challenge

The central theme of IBM's 2026 roadmap is the transition from **error mitigation** (making the best of noisy qubits) to **error correction** (using redundancy to create reliable logical qubits).

### Why Error Correction Matters

Current quantum computers have error rates of roughly 0.1–1% per gate operation. For many useful quantum algorithms (like Shor's algorithm for factoring or large-scale quantum chemistry simulations), you need error rates below 10⁻¹⁰ or better. The gap between current error rates and required rates is enormous — roughly 8 orders of magnitude.

**Quantum error correction (QEC)** bridges this gap by encoding a single logical qubit across many physical qubits. If errors are below a certain threshold, the logical error rate can be made arbitrarily small by adding more physical qubits.

### IBM's Error Correction Strategy

IBM is pursuing a multi-pronged approach:

1. **Surface codes**: The workhorse of QEC, using a 2D lattice of qubits with nearest-neighbor connectivity
2. **Gross codes and qLDPC codes**: More efficient codes that require fewer physical qubits per logical qubit but demand longer-range connectivity
3. **Hardware-software co-design**: Optimizing both the physical qubits and the decoding software together

## Industry Context

IBM's roadmap doesn't exist in a vacuum. The competitive landscape in 2026 includes:

- **Google**: Continuing to advance their superconducting qubit program, with demonstrated below-threshold error correction on their latest processors
- **Microsoft**: Making progress with topological qubits based on Majorana fermions, promising inherently lower error rates
- **Quantinuum**: Pushing trapped-ion systems with industry-leading gate fidelities and demonstrated logical qubit operations
- **Amazon (AWS)**: Developing their own superconducting quantum hardware while maintaining the multi-provider Braket platform
- **Startups**: Companies like IonQ, Rigetti, PsiQuantum, and QuEra continue to advance alternative approaches

## What This Means for Developers

For quantum software developers and researchers, IBM's 2026 roadmap signals several important trends:

### 1. Think in Logical Qubits
Start designing algorithms in terms of logical qubits and logical operations. The abstraction layer between logical and physical qubits will become increasingly important.

### 2. Embrace Error Mitigation Now
While full error correction is coming, error mitigation techniques (zero-noise extrapolation, probabilistic error cancellation) remain essential for getting useful results from current hardware.

### 3. Learn Dynamic Circuits
Mid-circuit measurement and conditional operations are no longer theoretical — they're available on real hardware and are required for error correction, teleportation, and many advanced algorithms.

### 4. Prepare for Hybrid Workflows
The future is quantum-centric supercomputing: tightly coupled quantum and classical processors working together. Design your applications to leverage both.

## Looking Forward

IBM's quantum roadmap for 2026 and beyond paints a picture of a technology approaching a critical inflection point. The transition from NISQ to fault-tolerant quantum computing won't happen overnight, but the milestones being hit — improved gate fidelities, demonstrated error correction, modular architectures — represent real, measurable progress.

For anyone interested in quantum computing, this is an exciting time. The hardware is maturing, the software ecosystem is solidifying, and the path to quantum advantage for practical problems is becoming clearer. Whether you're a researcher, developer, or simply curious about the future of computing, IBM's systematic approach to scaling quantum technology provides a valuable roadmap for the entire field.

The question is no longer *if* quantum computers will become useful for real-world problems, but *when* — and IBM is betting that we're closer than many think.
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[MIT in the media: For the future of tech, "Massachusetts can absolutely lead"]]></title>
            <link>https://quantumcomputinginfo.com/blog/mit-in-the-media-for-the-future-of-tech-massachusetts-can-absolutely-lead-0db8ca</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/mit-in-the-media-for-the-future-of-tech-massachusetts-can-absolutely-lead-0db8ca</guid>
            <pubDate>Thu, 18 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Leaders, faculty across MIT discuss fostering innovation and talent in Greater Boston in special series of articles published alongside the outlet's annual list...]]></description>
            <content:encoded><![CDATA[
# MIT in the media: For the future of tech, \"Massachusetts can absolutely lead\"

> **Source:** Originally published on [MIT News Quantum](https://news.mit.edu/2026/mit-media-future-tech-massachusetts-can-absolutely-lead) on June 18, 2026.

Leaders, faculty across MIT discuss fostering innovation and talent in Greater Boston in special series of articles published alongside the outlet's annual list of 'Tech Power Players'

---

To read the full article, visit the original source page:

[Read the full article on MIT News Quantum →](https://news.mit.edu/2026/mit-media-future-tech-massachusetts-can-absolutely-lead)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Getting Started with Qiskit: Your First Quantum Circuit]]></title>
            <link>https://quantumcomputinginfo.com/blog/getting-started-with-qiskit</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/getting-started-with-qiskit</guid>
            <pubDate>Thu, 18 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[A step-by-step beginner tutorial for IBM's Qiskit framework — install, create quantum circuits, simulate, and measure results.]]></description>
            <content:encoded><![CDATA[
# Getting Started with Qiskit: Your First Quantum Circuit

**Qiskit** (pronounced "kiss-kit") is IBM's open-source quantum computing framework. It's one of the most popular tools for learning and working with quantum computers, offering everything from circuit construction to execution on real quantum hardware. In this tutorial, we'll walk through installing Qiskit, building your first quantum circuit, simulating it, and interpreting the results.

## Prerequisites

Before you begin, make sure you have:

- **Python 3.9 or higher** installed on your system
- **pip** (Python package installer)
- A basic understanding of Python programming
- Familiarity with [quantum computing concepts](/articles/what-is-quantum-computing) (helpful but not required)

## Step 1: Install Qiskit

Open your terminal and install Qiskit using pip:

```bash
pip install qiskit
```

For the local simulator (Aer), also install:

```bash
pip install qiskit-aer
```

If you want to run circuits on real IBM quantum hardware, install the IBM Quantum provider:

```bash
pip install qiskit-ibm-runtime
```

Verify your installation:

```python
import qiskit
print(qiskit.__version__)
```

You should see a version number like `1.x.x` printed to the console.

## Step 2: Create Your First Quantum Circuit

Let's start with the simplest possible quantum circuit — a single qubit that we put into superposition and then measure.

```python
from qiskit import QuantumCircuit

# Create a circuit with 1 qubit and 1 classical bit
qc = QuantumCircuit(1, 1)

# Apply a Hadamard gate to qubit 0 (creates superposition)
qc.h(0)

# Measure qubit 0 into classical bit 0
qc.measure(0, 0)

# Draw the circuit
print(qc.draw())
```

**Output:**
```
     ┌───┐┌─┐
q_0: ┤ H ├┤M├
     └───┘└╥┘
c_0: ══════╩═
```

Let's break down what's happening:

1. `QuantumCircuit(1, 1)` creates a circuit with 1 quantum register (qubit) and 1 classical register (bit for storing measurement results)
2. `qc.h(0)` applies a **Hadamard gate** to qubit 0, putting it in an equal superposition of |0⟩ and |1⟩
3. `qc.measure(0, 0)` measures qubit 0 and stores the result in classical bit 0

## Step 3: Simulate the Circuit

Now let's run this circuit on a simulator to see the results. We'll use Qiskit Aer's local simulator:

```python
from qiskit import QuantumCircuit
from qiskit_aer import AerSimulator

# Create the circuit
qc = QuantumCircuit(1, 1)
qc.h(0)
qc.measure(0, 0)

# Create a simulator backend
simulator = AerSimulator()

# Run the circuit 1000 times (shots)
result = simulator.run(qc, shots=1000).result()

# Get the measurement counts
counts = result.get_counts(qc)
print(f"Measurement results: {counts}")
```

**Example output:**
```
Measurement results: {'0': 498, '1': 502}
```

Since the Hadamard gate creates an equal superposition, we expect roughly **50% zeros and 50% ones**. The exact numbers will vary each time due to the probabilistic nature of quantum measurement — just like flipping a fair coin 1000 times won't give exactly 500 heads.

## Step 4: Visualize the Results

Qiskit includes powerful visualization tools. Let's create a histogram of our results:

```python
from qiskit.visualization import plot_histogram
import matplotlib.pyplot as plt

# Using the counts from the previous step
fig = plot_histogram(counts)
plt.title("Hadamard Gate Measurement Results")
plt.savefig("measurement_results.png", dpi=150, bbox_inches="tight")
plt.show()
```

This produces a bar chart showing the distribution of measurement outcomes.

## Step 5: Build a Bell State Circuit

Now let's create something more interesting — a **Bell state**, which is a two-qubit entangled state. This is one of the most fundamental circuits in quantum computing:

```python
from qiskit import QuantumCircuit
from qiskit_aer import AerSimulator

# Create a circuit with 2 qubits and 2 classical bits
bell = QuantumCircuit(2, 2)

# Apply Hadamard to qubit 0
bell.h(0)

# Apply CNOT with qubit 0 as control and qubit 1 as target
bell.cx(0, 1)

# Measure both qubits
bell.measure([0, 1], [0, 1])

print(bell.draw())
```

**Output:**
```
     ┌───┐     ┌─┐
q_0: ┤ H ├──●──┤M├───
     └───┘┌─┴─┐└╥┘┌─┐
q_1: ─────┤ X ├─╫─┤M├
          └───┘ ║ └╥┘
c_0: ═══════════╩══╬═
                   ║
c_1: ══════════════╩═
```

Now simulate it:

```python
simulator = AerSimulator()
result = simulator.run(bell, shots=1000).result()
counts = result.get_counts(bell)
print(f"Bell state results: {counts}")
```

**Example output:**
```
Bell state results: {'00': 493, '11': 507}
```

Notice something remarkable: **we only get '00' and '11', never '01' or '10'**. This is entanglement in action! The two qubits are perfectly correlated — when one is 0, the other is always 0, and when one is 1, the other is always 1.

## Step 6: Explore the Statevector

Sometimes you want to see the exact quantum state rather than measurement statistics. Qiskit can show you the **statevector** — the full mathematical description of the quantum state:

```python
from qiskit import QuantumCircuit
from qiskit.quantum_info import Statevector

# Create Bell state (without measurement)
bell = QuantumCircuit(2)
bell.h(0)
bell.cx(0, 1)

# Get the statevector
state = Statevector.from_instruction(bell)
print("Statevector:", state)

# Display probabilities
probs = state.probabilities_dict()
print("Probabilities:", probs)
```

**Output:**
```
Statevector: [0.707+0.j, 0.+0.j, 0.+0.j, 0.707+0.j]
Probabilities: {'00': 0.5, '11': 0.5}
```

The statevector confirms our Bell state: (|00⟩ + |11⟩)/√2, with coefficients of approximately 0.707 (which is 1/√2).

## Step 7: Build a Multi-Gate Circuit

Let's build a more complex circuit that demonstrates several gates:

```python
from qiskit import QuantumCircuit
from qiskit_aer import AerSimulator

# 3 qubits, 3 classical bits
qc = QuantumCircuit(3, 3)

# Put all qubits in superposition
qc.h(0)
qc.h(1)
qc.h(2)

# Add some entangling gates
qc.cx(0, 1)  # CNOT: qubit 0 controls qubit 1
qc.cx(1, 2)  # CNOT: qubit 1 controls qubit 2

# Apply a phase gate
qc.z(0)

# Apply a T gate
qc.t(2)

# Measure all
qc.measure([0, 1, 2], [0, 1, 2])

print(qc.draw())

# Simulate
simulator = AerSimulator()
result = simulator.run(qc, shots=2048).result()
counts = result.get_counts(qc)

# Sort and display results
for outcome, count in sorted(counts.items()):
    print(f"|{outcome}⟩: {count} ({count/2048*100:.1f}%)")
```

## Step 8: Run on Real Quantum Hardware (Optional)

To run your circuit on a real IBM quantum computer, you need an IBM Quantum account:

1. **Create a free account** at [quantum.ibm.com](https://quantum.ibm.com)
2. **Get your API token** from your account dashboard
3. **Connect and run**:

```python
from qiskit_ibm_runtime import QiskitRuntimeService, SamplerV2

# Save your credentials (only needed once)
QiskitRuntimeService.save_account(
    channel="ibm_quantum",
    token="YOUR_API_TOKEN_HERE"
)

# Connect to the service
service = QiskitRuntimeService()

# Select a backend (real quantum computer)
backend = service.least_busy(simulator=False)
print(f"Running on: {backend.name}")

# Create and transpile your circuit
from qiskit.transpiler.preset_passmanagers import generate_preset_pass_manager

qc = QuantumCircuit(2, 2)
qc.h(0)
qc.cx(0, 1)
qc.measure([0, 1], [0, 1])

# Transpile for the specific backend
pm = generate_preset_pass_manager(backend=backend, optimization_level=1)
transpiled = pm.run(qc)

# Run using Sampler primitive
sampler = SamplerV2(backend)
job = sampler.run([transpiled], shots=1000)
result = job.result()

print("Results from real quantum hardware!")
print(result[0].data.c.get_counts())
```

**Note**: Results from real hardware will show some '01' and '10' outcomes due to hardware noise — this is normal and expected in the NISQ era.

## Common Gates Reference

Here's a quick reference for the most common Qiskit gate methods:

| Gate | Qiskit Method | Description |
|------|---------------|-------------|
| Hadamard | `qc.h(qubit)` | Creates superposition |
| Pauli-X | `qc.x(qubit)` | Bit flip (NOT gate) |
| Pauli-Y | `qc.y(qubit)` | Bit + phase flip |
| Pauli-Z | `qc.z(qubit)` | Phase flip |
| CNOT | `qc.cx(control, target)` | Controlled-NOT |
| CZ | `qc.cz(control, target)` | Controlled-Z |
| SWAP | `qc.swap(q1, q2)` | Swap two qubits |
| Toffoli | `qc.ccx(c1, c2, target)` | Double-controlled NOT |
| S Gate | `qc.s(qubit)` | π/2 phase |
| T Gate | `qc.t(qubit)` | π/4 phase |
| Rx | `qc.rx(θ, qubit)` | X-axis rotation |
| Ry | `qc.ry(θ, qubit)` | Y-axis rotation |
| Rz | `qc.rz(θ, qubit)` | Z-axis rotation |

## Try it in the Simulator

Before you write Qiskit code, you can build and test your quantum circuits interactively below! Place an **H** gate on `q[0]` to create a superposition, and notice the output state probabilities update in real-time.

<QuantumSimulator />

---

## Concept Check

Test your understanding of the concepts covered in this guide:

<QuizWidget
  id="qiskit_basics_1"
  question="Which gate is used to create an equal superposition state from a classical basis state |0⟩?"
  options={[
    "Pauli-X Gate",
    "Pauli-Z Gate",
    "Hadamard Gate",
    "CNOT Gate"
  ]}
  correctIndex={2}
  explanation="The Hadamard (H) gate is a single-qubit gate that maps the basis state |0⟩ to (|0⟩ + |1⟩)/√2, creating an equal superposition of |0⟩ and |1⟩."
/>

<QuizWidget
  id="qiskit_basics_2"
  question="In the CNOT (Controlled-NOT) gate, what condition causes the target qubit to undergo a bit-flip (NOT operation)?"
  options={[
    "If the target qubit is in state |1⟩",
    "If the control qubit is in state |1⟩",
    "If both qubits are in state |0⟩",
    "If the control qubit is in a superposition"
  ]}
  correctIndex={1}
  explanation="The CNOT gate acts on two qubits: it performs a NOT (Pauli-X) flip on the target qubit only if the control qubit is in state |1⟩. If the control is |0⟩, the target is unchanged."
/>

---

## Next Steps

Now that you've built your first quantum circuits, here are some ideas to explore:

1. **Build a quantum teleportation circuit** — Check our [quantum teleportation tutorial](/tutorials/quantum-teleportation-circuit)
2. **Implement Deutsch's algorithm** — The simplest quantum algorithm that demonstrates quantum advantage
3. **Explore variational circuits** — Learn about VQE and QAOA for optimization problems
4. **Study quantum error correction** — Understand how we protect quantum information from noise
5. **Try other frameworks** — Explore Google's Cirq, Amazon Braket, or Microsoft's Q#

Happy quantum coding!
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Building a Quantum Teleportation Circuit]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-teleportation-circuit</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-teleportation-circuit</guid>
            <pubDate>Thu, 18 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Learn the theory behind quantum teleportation and implement a complete teleportation circuit using Qiskit, step by step.]]></description>
            <content:encoded><![CDATA[
# Building a Quantum Teleportation Circuit

**Quantum teleportation** is one of the most mind-bending protocols in quantum information science. Despite its science-fiction name, it's a real and well-demonstrated phenomenon — the transfer of a quantum state from one qubit to another using entanglement and classical communication. No physical matter is transported; instead, the quantum *information* is faithfully transmitted.

In this tutorial, we'll understand the theory behind quantum teleportation and build a complete working implementation in Qiskit.

## Prerequisites

Before starting this tutorial, you should be comfortable with:

- [Quantum gates and circuits](/articles/quantum-gates-circuits) (Hadamard, CNOT, Pauli gates)
- [Basic Qiskit usage](/tutorials/getting-started-with-qiskit)
- Bell states and entanglement

## The Teleportation Problem

Imagine Alice has a qubit in an unknown quantum state |ψ⟩ = α|0⟩ + β|1⟩ that she wants to send to Bob. She faces several constraints:

1. **No-cloning theorem**: She cannot copy the quantum state
2. **Measurement destroys information**: If she measures the qubit to learn its state, the superposition collapses
3. **Classical channels only**: She can only send classical bits to Bob (no quantum channel available)

Quantum teleportation solves this problem elegantly using a **pre-shared entangled pair** and **two classical bits** of communication.

## The Teleportation Protocol

The protocol involves three qubits:

- **Qubit 0 (q₀)**: Alice's qubit in the unknown state |ψ⟩ to be teleported
- **Qubit 1 (q₁)**: Alice's half of the entangled Bell pair
- **Qubit 2 (q₂)**: Bob's half of the entangled Bell pair

### Step-by-Step Protocol

**Step 1: Prepare the entangled pair**

Before teleportation begins, Alice and Bob share an entangled Bell state:

`|Φ⁺⟩_12 = 1/sqrt(2) * (|00⟩ + |11⟩)`

The full three-qubit state is:

`|ψ⟩_0 ⊗ |Φ⁺⟩_12 = (α|0⟩ + β|1⟩) ⊗ 1/sqrt(2) * (|00⟩ + |11⟩)`

**Step 2: Alice applies CNOT**

Alice applies a CNOT gate with her qubit (q₀) as control and her half of the Bell pair (q₁) as target.

**Step 3: Alice applies Hadamard**

Alice applies a Hadamard gate to her qubit (q₀).

**Step 4: Alice measures**

Alice measures both her qubits (q₀ and q₁), obtaining two classical bits.

**Step 5: Bob applies corrections**

Based on Alice's measurement results, Bob applies corrections to his qubit (q₂):

| Alice's result | Bob's correction |
|---------------|-----------------|
| 00 | None (I) |
| 01 | Apply X gate |
| 10 | Apply Z gate |
| 11 | Apply Z then X |

After corrections, Bob's qubit is in the state |ψ⟩ = α|0⟩ + β|1⟩ — the original state has been teleported!

## Mathematical Derivation

Let's trace through the mathematics to see why this works. We start with the initial state:

`|Ψ⟩ = (α|0⟩_0 + β|1⟩_0) ⊗ 1/sqrt(2) * (|00⟩_12 + |11⟩_12)`

Expanding:

`|Ψ⟩ = 1/sqrt(2) * [α|000⟩ + α|011⟩ + β|100⟩ + β|111⟩]`

After CNOT on q₀→q₁:

`|Ψ⟩ = 1/sqrt(2) * [α|000⟩ + α|011⟩ + β|110⟩ + β|101⟩]`

After Hadamard on q₀ (using H|0⟩ = (|0⟩+|1⟩)/√2 and H|1⟩ = (|0⟩−|1⟩)/√2):

`|Ψ⟩ = 1/2 * [|00⟩(α|0⟩ + β|1⟩) + |01⟩(α|1⟩ + β|0⟩) + |10⟩(α|0⟩ - β|1⟩) + |11⟩(α|1⟩ - β|0⟩)]`

Each of Alice's measurement outcomes is equally likely (probability 1/4), and for each outcome, Bob's qubit is a simple transformation of the original state |ψ⟩:

- **00**: Bob has α|0⟩ + β|1⟩ → Apply I (no correction)
- **01**: Bob has α|1⟩ + β|0⟩ → Apply X to get α|0⟩ + β|1⟩
- **10**: Bob has α|0⟩ − β|1⟩ → Apply Z to get α|0⟩ + β|1⟩
- **11**: Bob has α|1⟩ − β|0⟩ → Apply ZX to get α|0⟩ + β|1⟩

## Qiskit Implementation

Now let's implement the complete teleportation protocol:

```python
from qiskit import QuantumCircuit, QuantumRegister, ClassicalRegister
from qiskit_aer import AerSimulator
from qiskit.quantum_info import Statevector
import numpy as np

def create_teleportation_circuit(state_prep_gate=None):
    """
    Create a quantum teleportation circuit.

    Args:
        state_prep_gate: Optional gate to prepare the initial state.
                         If None, teleports |0⟩.
    """
    # Create registers
    qr = QuantumRegister(3, 'q')
    cr = ClassicalRegister(2, 'c')
    qc = QuantumCircuit(qr, cr)

    # ===== Step 0: Prepare the state to teleport =====
    if state_prep_gate:
        state_prep_gate(qc, qr[0])
    qc.barrier()

    # ===== Step 1: Create Bell pair between q1 and q2 =====
    qc.h(qr[1])
    qc.cx(qr[1], qr[2])
    qc.barrier()

    # ===== Step 2: Alice's operations =====
    # CNOT with q0 as control, q1 as target
    qc.cx(qr[0], qr[1])
    # Hadamard on q0
    qc.h(qr[0])
    qc.barrier()

    # ===== Step 3: Alice measures q0 and q1 =====
    qc.measure(qr[0], cr[0])
    qc.measure(qr[1], cr[1])
    qc.barrier()

    # ===== Step 4: Bob's conditional corrections =====
    # If c1 == 1, apply X to q2
    qc.x(qr[2]).c_if(cr[1], 1)
    # If c0 == 1, apply Z to q2
    qc.z(qr[2]).c_if(cr[0], 1)

    return qc

# Prepare a specific state to teleport: |ψ⟩ = cos(π/3)|0⟩ + sin(π/3)|1⟩
def prepare_state(qc, qubit):
    """Prepare an interesting state to teleport."""
    qc.ry(2 * np.pi / 3, qubit)  # Ry rotation

# Create the circuit
qc = create_teleportation_circuit(prepare_state)
print(qc.draw(output='text'))
```

**Circuit output:**
```
      ┌──────────┐ ░            ░      ┌───┐ ░ ┌─┐    ░       ┌───┐  ┌───┐
q_0: ─┤ Ry(2π/3) ├─░────────────░───●──┤ H ├─░─┤M├────░───────┤   ├──┤   ├
      └──────────┘ ░ ┌───┐      ░ ┌─┴─┐└───┘ ░ └╥┘┌─┐ ░       │   │  │   │
q_1: ──────────────░─┤ H ├──●───░─┤ X ├──────░──╫─┤M├─░───────┤   ├──┤   ├
                   ░ └───┘┌─┴─┐ ░ └───┘      ░  ║ └╥┘ ░  ┌───┐│   │  │   │
q_2: ──────────────░──────┤ X ├─░─────────────░──╫──╫──░──┤ X ├┤   ├──┤ Z ├
                   ░      └───┘ ░             ░  ║  ║  ░  └─╥─┘└───┘  └─╥─┘
c: 2/════════════════════════════════════════════╩══╩════════╩════════════╩══
                                                 0  1       1            0
```

## Verify the Teleportation

Let's verify that the teleportation actually works by comparing the original state with the teleported state:

```python
import numpy as np
from qiskit import QuantumCircuit
from qiskit.quantum_info import Statevector
from qiskit_aer import AerSimulator

# First, let's see what state we're trying to teleport
prep_circuit = QuantumCircuit(1)
prep_circuit.ry(2 * np.pi / 3, 0)
original_state = Statevector.from_instruction(prep_circuit)
print(f"Original state to teleport: {original_state}")
print(f"Original probabilities: {original_state.probabilities_dict()}")

# Now run the teleportation circuit many times
qc = create_teleportation_circuit(prepare_state)

# Add measurement of Bob's qubit to verify
qc.measure(2, 0)  # We'll reuse classical bit 0

simulator = AerSimulator()
result = simulator.run(qc, shots=10000).result()
counts = result.get_counts()
print(f"\nTeleportation results (Bob's qubit): {counts}")
```

## Understanding the Results

The teleportation circuit demonstrates several deep principles:

### 1. No Faster-Than-Light Communication
Although Alice's measurement instantly affects Bob's qubit through entanglement, Bob cannot know what state he has until Alice sends her classical measurement results. The classical communication step is essential and limited by the speed of light.

### 2. The Original State Is Destroyed
After teleportation, Alice's qubit (q₀) has been measured and is no longer in state |ψ⟩. The quantum information has been **moved**, not copied. This is consistent with the no-cloning theorem.

### 3. Entanglement Is Consumed
The Bell pair shared between Alice and Bob is no longer entangled after the protocol. Entanglement is a resource that gets "used up" during teleportation.

## Advanced: Teleporting Arbitrary States

Let's teleport several different states and verify each one:

```python
import numpy as np
from qiskit import QuantumCircuit
from qiskit_aer import AerSimulator
from qiskit.quantum_info import Statevector

def verify_teleportation(theta, phi=0):
    """Verify teleportation of state cos(θ/2)|0⟩ + e^(iφ)sin(θ/2)|1⟩"""

    # Expected probabilities
    p0 = np.cos(theta / 2) ** 2
    p1 = np.sin(theta / 2) ** 2

    # State preparation function
    def prep(qc, qubit):
        qc.ry(theta, qubit)
        if phi != 0:
            qc.rz(phi, qubit)

    # Create and run teleportation circuit
    qc = create_teleportation_circuit(prep)

    # Measure Bob's qubit into a separate classical register
    cr_bob = ClassicalRegister(1, 'bob')
    qc.add_register(cr_bob)
    qc.measure(2, cr_bob[0])

    simulator = AerSimulator()
    result = simulator.run(qc, shots=50000).result()
    counts = result.get_counts()

    # Extract Bob's measurement statistics
    bob_0 = sum(v for k, v in counts.items() if k.split()[0] == '0')
    bob_1 = sum(v for k, v in counts.items() if k.split()[0] == '1')
    total = bob_0 + bob_1

    print(f"θ={theta:.2f}, φ={phi:.2f}")
    print(f"  Expected:  P(0)={p0:.3f}, P(1)={p1:.3f}")
    print(f"  Measured:  P(0)={bob_0/total:.3f}, P(1)={bob_1/total:.3f}")
    print()

# Test various states
print("=== Teleportation Verification ===\n")
verify_teleportation(0)           # |0⟩
verify_teleportation(np.pi)       # |1⟩
verify_teleportation(np.pi / 2)   # |+⟩
verify_teleportation(np.pi / 3)   # Arbitrary state
verify_teleportation(2.5, 1.2)    # Arbitrary state with phase
```

## Applications of Quantum Teleportation

Quantum teleportation isn't just a theoretical curiosity. It has practical applications in:

- **Quantum networking**: Teleportation is a key primitive for quantum internet protocols, enabling secure transmission of quantum states between nodes
- **Quantum error correction**: Teleportation-based error correction codes use the protocol to protect quantum information
- **Distributed quantum computing**: Teleportation can link separate quantum processors into a larger virtual quantum computer
- **Quantum key distribution**: Enhanced QKD protocols use teleportation for more robust security guarantees

## Key Takeaways

1. Quantum teleportation transfers quantum **state information**, not physical matter
2. It requires a **pre-shared entangled pair** and **two classical bits** of communication
3. The original state is **destroyed** in the process (no cloning)
4. Entanglement is **consumed** — you need a new Bell pair for each teleportation
5. It **does not** allow faster-than-light communication

Quantum teleportation beautifully demonstrates the interplay between entanglement, measurement, and classical communication — the three pillars of quantum information science. Master this protocol, and you'll have a deep understanding of some of the most fundamental concepts in quantum computing.
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Advances in Quantum Error Correction: From Theory to Practice]]></title>
            <link>https://quantumcomputinginfo.com/blog/quantum-error-correction-advances</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/quantum-error-correction-advances</guid>
            <pubDate>Thu, 18 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[A research overview of quantum error correction — surface codes, color codes, qLDPC codes, and the latest breakthroughs bringing fault-tolerant quantum computing closer to reality.]]></description>
            <content:encoded><![CDATA[
# Advances in Quantum Error Correction: From Theory to Practice

Quantum error correction (QEC) is widely regarded as the most important challenge standing between today's noisy quantum computers and the fault-tolerant machines needed to solve society's hardest problems. Without QEC, even the most advanced quantum processors accumulate errors so rapidly that complex algorithms become impossible. In this article, we survey the state of the art in quantum error correction — the theoretical foundations, leading code families, recent experimental breakthroughs, and the road ahead.

## Why Quantum Errors Are Different

Classical computers also experience errors — a bit might flip from 0 to 1 due to cosmic rays, voltage fluctuations, or manufacturing defects. Classical error correction is well-understood and highly effective: triple modular redundancy, Hamming codes, and CRC checksums protect our data with minimal overhead.

Quantum errors, however, are fundamentally more challenging for several reasons:

### 1. Continuous Error Space
Classical bits can only suffer one type of error: a bit flip (0 → 1 or 1 → 0). Qubits can suffer an infinite continuum of errors. A qubit's state |ψ⟩ = α|0⟩ + β|1⟩ can be corrupted in its amplitude, its phase, or both — corresponding to errors anywhere on the Bloch sphere.

### 2. No-Cloning Theorem
In classical computing, you can simply copy data to create redundant backups. The quantum no-cloning theorem forbids copying an unknown quantum state. This means we can't use simple redundancy-based approaches.

### 3. Measurement Destroys Information
Checking a classical bit for errors doesn't affect it. Measuring a qubit collapses its superposition, destroying the very information you're trying to protect. QEC must detect errors without learning anything about the encoded quantum state.

### 4. Entanglement Sensitivity
Quantum computations rely on delicate entangled states that are extremely sensitive to environmental noise (decoherence). Even tiny interactions with the environment can corrupt entanglement.

## Foundations of Quantum Error Correction

Despite these challenges, quantum error correction is possible, thanks to several key insights:

### The Discretization of Errors

While quantum errors form a continuum, any error can be decomposed into a combination of the **Pauli operators**:

- **I** (identity): No error
- **X** (bit flip): |0⟩ ↔ |1⟩
- **Z** (phase flip): |1⟩ → −|1⟩
- **Y = iXZ** (both bit and phase flip)

If a QEC code can correct X and Z errors, it can correct **any** error. This remarkable fact reduces the continuous error problem to a discrete one.

### Syndrome Measurement

QEC codes encode a **logical qubit** across multiple **physical qubits**. Errors are detected by measuring **stabilizer operators** — special multi-qubit observables that reveal information about errors without revealing the encoded quantum state.

These measurements produce a **syndrome** — a pattern of bits that indicates which error (if any) has occurred. A classical **decoder** then determines the appropriate correction.

### The Threshold Theorem

The **threshold theorem** of quantum computing states: if the physical error rate per gate is below a certain threshold value, then quantum error correction can reduce the logical error rate to arbitrarily low levels, at the cost of polynomial overhead in the number of physical qubits.

This theorem is the theoretical foundation for fault-tolerant quantum computing. The threshold depends on the specific code and architecture, but typical values range from 0.1% to 1%.

## Leading Error Correction Codes

### Surface Codes

The **surface code** is currently the most widely studied and implemented QEC code. It encodes one logical qubit in a 2D lattice of physical qubits, requiring only nearest-neighbor interactions.

**Key properties:**
- **High threshold**: ~1% error threshold, among the highest of any known code
- **Local operations**: Only nearest-neighbor gates required, matching the connectivity of superconducting qubit chips
- **Well-understood decoding**: Minimum-weight perfect matching (MWPM) decoders are efficient and well-characterized

**Overhead**: A distance-d surface code uses approximately 2d² physical qubits to encode one logical qubit. For practical applications requiring very low logical error rates (10⁻¹⁵), d might need to be 20–30, requiring 800–1800 physical qubits per logical qubit. This high overhead is the surface code's main drawback.

**Recent advances:**
- Google's Willow processor demonstrated below-threshold surface code operation, achieving logical error rates that improve with increasing code distance — a key milestone
- IBM has demonstrated real-time syndrome decoding on their Eagle and Heron processors
- Quantinuum achieved high-fidelity logical operations using trapped ions with surface code encoding

### Color Codes

**Color codes** are topological codes defined on three-colorable lattices. They offer advantages over surface codes in some respects:

- **Transversal implementation** of the entire Clifford group (H, S, CNOT), meaning these logical operations can be performed without additional overhead
- **Same threshold** as surface codes (~0.1% with circuit-level noise)
- **More compact** for certain operations

However, color codes typically have lower thresholds for the most common noise models and more complex decoding algorithms.

### Quantum Low-Density Parity-Check (qLDPC) Codes

**qLDPC codes** are a family that has generated enormous excitement in recent years. Unlike surface codes, which encode one logical qubit per code block, qLDPC codes can encode **many logical qubits** with much less overhead.

**Key breakthroughs:**
- **Constant-rate codes**: qLDPC codes can achieve a constant ratio of logical qubits to physical qubits as the code size grows — dramatically better scaling than surface codes
- **Good codes exist**: Recent theoretical work proved the existence of "good" quantum codes with constant rate and linear distance
- **Practical constructions**: Families like bivariate bicycle codes offer concrete constructions that are implementable on near-term hardware

**Challenges:**
- Require long-range connectivity between qubits (not just nearest-neighbor)
- Decoding is more complex and less well-studied
- Fewer experimental demonstrations to date

### Bosonic Codes

**Bosonic codes** take a fundamentally different approach: instead of encoding one logical qubit across many physical qubits, they encode one logical qubit in the infinite-dimensional Hilbert space of a single bosonic mode (like a microwave cavity or mechanical oscillator).

**Notable examples:**
- **Cat codes**: Encode information in superpositions of coherent states
- **Binomial codes**: Use specific photon number superpositions
- **GKP (Gottesman-Kitaev-Preskill) codes**: Encode in grid states of a harmonic oscillator

**Advantages:**
- Hardware-efficient: fewer physical components needed
- Well-suited to superconducting circuit architectures
- Can achieve break-even point (logical lifetime > physical lifetime) with current technology

**Recent results:**
- Multiple groups have demonstrated logical qubit lifetimes exceeding the best physical qubit lifetimes using bosonic codes — the "break-even" milestone
- GKP codes combined with surface codes offer a promising path to scalable fault tolerance

## Recent Experimental Breakthroughs

### Below-Threshold Operation

The most significant milestone in recent QEC history is demonstrating **below-threshold** operation: showing that increasing the code distance actually reduces the logical error rate. This had been the critical open question — if physical error rates are too high, adding more qubits for error correction can actually make things worse.

Several groups have now demonstrated this:
- Google showed exponential suppression of logical errors with increasing surface code distance on their latest processors
- Quantinuum demonstrated logical qubit operations with error rates significantly below the physical error rate
- IBM showed error-corrected circuits running on Heron-generation hardware

### Real-Time Decoding

For QEC to be practical, syndrome measurement and error correction must happen in **real time** during the computation, not in post-processing. This requires ultra-fast classical decoders that can process syndrome data faster than new errors accumulate.

Recent advances include:
- FPGA-based decoders achieving microsecond-scale decoding latency
- Machine learning decoders that can handle correlated errors
- Modular decoder architectures that scale with code distance

### Logical Operations

Simply storing a logical qubit isn't enough — you need to perform operations on it. Recent demonstrations include:
- Transversal CNOT gates between logical qubits
- Magic state distillation for non-Clifford operations
- Lattice surgery for merging and splitting logical qubits

## The Road to Fault Tolerance

Despite remarkable progress, significant challenges remain:

### Scaling Overhead
Current estimates suggest that useful quantum algorithms (like factoring a 2048-bit RSA key or simulating complex molecules) will require millions of physical qubits, even with the best known error correction codes.

### Decoder Speed
Real-time decoding must keep pace with physical qubit operation speeds. For superconducting qubits with microsecond-scale operations, this is achievable. But faster qubits may outpace current decoder technology.

### Leakage and Non-Pauli Errors
Real qubits can "leak" out of the computational subspace into higher energy levels. These leakage errors don't fit neatly into the Pauli error model and require additional mitigation strategies.

### Correlated Errors
Most QEC theory assumes errors are independent. In reality, cosmic rays, thermal fluctuations, and crosstalk can cause correlated errors across multiple qubits simultaneously, potentially defeating the error correction code.

## Outlook

The field of quantum error correction has made more progress in the past three years than in the preceding two decades. We've gone from theoretical proposals to experimental demonstrations of below-threshold operation, real-time decoding, and logical gate operations.

The transition from NISQ to fault-tolerant quantum computing isn't a single breakthrough — it's a gradual engineering progression. Each improvement in physical qubit quality, decoder speed, and code efficiency brings us closer. The theoretical foundations are solid, the experimental demonstrations are convincing, and the engineering challenges, while formidable, appear surmountable.

Quantum error correction is no longer a distant dream. It's an active engineering challenge being tackled by teams worldwide, and its successful implementation will unlock the full potential of quantum computing.
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Behind the Scenes of a Technical Interview]]></title>
            <link>https://quantumcomputinginfo.com/blog/behind-the-scenes-of-a-technical-interview-d2a79d</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/behind-the-scenes-of-a-technical-interview-d2a79d</guid>
            <pubDate>Wed, 17 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[This article is crossposted from IEEE Spectrum’s careers newsletter. Sign up now to get insider tips, expert advice, and practical strategies, written in partne...]]></description>
            <content:encoded><![CDATA[
# Behind the Scenes of a Technical Interview

> **Source:** Originally published on [IEEE Spectrum Quantum](https://spectrum.ieee.org/tech-interview-prep) on June 18, 2026.

This article is crossposted from IEEE Spectrum’s careers newsletter. Sign up now to get insider tips, expert advice, and practical strategies, written in partnership with tech career development company Parsity and delivered to your inbox for free! I’ve sat on both sides of the interview table several times over the past decade. You might be surprised to hear that I’ve often been just as nervous interviewing candidates as I was when being interviewed! Nearly all the interview advice out there is about the candidate’s side, but understanding the other side can also help you prepare. Let me show you what I’ve seen firsthand, and what I’d bet is happening at the company you just interviewed with. If you recently got rejected after an interview, this might explain what actually happened. One c...

---

To read the full article, visit the original source page:

[Read the full article on IEEE Spectrum Quantum →](https://spectrum.ieee.org/tech-interview-prep)
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            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Flexible cryogenic cables solve a challenge in quantum system development]]></title>
            <link>https://quantumcomputinginfo.com/blog/flexible-cryogenic-cables-solve-a-challenge-in-quantum-system-development-4aa898</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/flexible-cryogenic-cables-solve-a-challenge-in-quantum-system-development-4aa898</guid>
            <pubDate>Wed, 17 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[A prototype wiring system for dilution refrigerators could advance the realization of practical quantum computers....]]></description>
            <content:encoded><![CDATA[
# Flexible cryogenic cables solve a challenge in quantum system development

> **Source:** Originally published on [MIT News Quantum](https://news.mit.edu/2026/flexible-cryogenic-cables-solve-challenge-in-quantum-system-development-0617) on June 17, 2026.

A prototype wiring system for dilution refrigerators could advance the realization of practical quantum computers.

---

To read the full article, visit the original source page:

[Read the full article on MIT News Quantum →](https://news.mit.edu/2026/flexible-cryogenic-cables-solve-challenge-in-quantum-system-development-0617)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[New research shows how AMIE, our medical AI, could help manage health conditions.]]></title>
            <link>https://quantumcomputinginfo.com/blog/new-research-shows-how-amie-our-medical-ai-could-help-manage-health-conditions-866972</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/new-research-shows-how-amie-our-medical-ai-could-help-manage-health-conditions-866972</guid>
            <pubDate>Wed, 17 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Research in “Nature” shows our conversational AI system matches primary care physicians in complex disease management....]]></description>
            <content:encoded><![CDATA[
# New research shows how AMIE, our medical AI, could help manage health conditions.

> **Source:** Originally published on [Google AI Blog](https://blog.google/innovation-and-ai/models-and-research/google-research/amie-for-disease-management-in-nature/) on June 18, 2026.

Research in “Nature” shows our conversational AI system matches primary care physicians in complex disease management.

---

To read the full article, visit the original source page:

[Read the full article on Google AI Blog →](https://blog.google/innovation-and-ai/models-and-research/google-research/amie-for-disease-management-in-nature/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[How to create distinguishable states for quantum systems]]></title>
            <link>https://quantumcomputinginfo.com/blog/how-to-create-distinguishable-states-for-quantum-systems-00d89f</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/how-to-create-distinguishable-states-for-quantum-systems-00d89f</guid>
            <pubDate>Mon, 15 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Researchers establish key insights for reading and writing information for quantum sensing, communication, computing, and control....]]></description>
            <content:encoded><![CDATA[
# How to create distinguishable states for quantum systems

> **Source:** Originally published on [MIT News Quantum](https://news.mit.edu/2026/how-to-create-distinguishable-states-for-quantum-systems-0615) on June 15, 2026.

Researchers establish key insights for reading and writing information for quantum sensing, communication, computing, and control.

---

To read the full article, visit the original source page:

[Read the full article on MIT News Quantum →](https://news.mit.edu/2026/how-to-create-distinguishable-states-for-quantum-systems-0615)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Oxford physicists just made Schrödinger’s cat even stranger]]></title>
            <link>https://quantumcomputinginfo.com/blog/oxford-physicists-just-made-schrdingers-cat-even-stranger-329105</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/oxford-physicists-just-made-schrdingers-cat-even-stranger-329105</guid>
            <pubDate>Mon, 15 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Oxford physicists have created an entirely new type of Schrödinger’s cat-like quantum state using components that are themselves highly quantum in nature. The a...]]></description>
            <content:encoded><![CDATA[
# Oxford physicists just made Schrödinger’s cat even stranger

> **Source:** Originally published on [ScienceDaily Quantum Computers](https://www.sciencedaily.com/releases/2026/06/260614011848.htm) on June 15, 2026.

Oxford physicists have created an entirely new type of Schrödinger’s cat-like quantum state using components that are themselves highly quantum in nature. The advance could open new possibilities for more resilient quantum computers and deeper insights into the strange rules that govern the quantum universe.

---

To read the full article, visit the original source page:

[Read the full article on ScienceDaily Quantum Computers →](https://www.sciencedaily.com/releases/2026/06/260614011848.htm)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[We’re strengthening our presence in Alabama through new investments and community support.]]></title>
            <link>https://quantumcomputinginfo.com/blog/were-strengthening-our-presence-in-alabama-through-new-investments-and-community-support-08b81d</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/were-strengthening-our-presence-in-alabama-through-new-investments-and-community-support-08b81d</guid>
            <pubDate>Mon, 15 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Google has announced a $1.5 billion investment for 2026 and 2027 to expand its data center campus in Jackson County, Alabama. Operating since 2019 on a repurpos...]]></description>
            <content:encoded><![CDATA[
# We’re strengthening our presence in Alabama through new investments and community support.

> **Source:** Originally published on [Google AI Blog](https://blog.google/innovation-and-ai/infrastructure-and-cloud/global-network/alabama-investment-june-2026/) on June 16, 2026.

Google has announced a $1.5 billion investment for 2026 and 2027 to expand its data center campus in Jackson County, Alabama. Operating since 2019 on a repurposed former…

---

To read the full article, visit the original source page:

[Read the full article on Google AI Blog →](https://blog.google/innovation-and-ai/infrastructure-and-cloud/global-network/alabama-investment-june-2026/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Brain-inspired chip runs near absolute zero and could transform quantum computing]]></title>
            <link>https://quantumcomputinginfo.com/blog/brain-inspired-chip-runs-near-absolute-zero-and-could-transform-quantum-computing-193ec3</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/brain-inspired-chip-runs-near-absolute-zero-and-could-transform-quantum-computing-193ec3</guid>
            <pubDate>Fri, 12 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Scientists at the University of Hong Kong have created a remarkable new type of brain-inspired chip that can function just above absolute zero, one of the colde...]]></description>
            <content:encoded><![CDATA[
# Brain-inspired chip runs near absolute zero and could transform quantum computing

> **Source:** Originally published on [ScienceDaily Quantum Computers](https://www.sciencedaily.com/releases/2026/06/260612032024.htm) on June 12, 2026.

Scientists at the University of Hong Kong have created a remarkable new type of brain-inspired chip that can function just above absolute zero, one of the coldest environments imaginable. By using a standard silicon carbide transistor in a completely new way, the team made a single device behave like an energy-efficient neuron, firing electrical “spikes” similar to those in the human brain.

---

To read the full article, visit the original source page:

[Read the full article on ScienceDaily Quantum Computers →](https://www.sciencedaily.com/releases/2026/06/260612032024.htm)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Our new community investments in Virginia support local jobs and expand energy affordability.]]></title>
            <link>https://quantumcomputinginfo.com/blog/our-new-community-investments-in-virginia-support-local-jobs-and-expand-energy-affordability-d20d21</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/our-new-community-investments-in-virginia-support-local-jobs-and-expand-energy-affordability-d20d21</guid>
            <pubDate>Thu, 11 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[We’re helping build the state’s next-generation workforce and investing in energy programs....]]></description>
            <content:encoded><![CDATA[
# Our new community investments in Virginia support local jobs and expand energy affordability.

> **Source:** Originally published on [Google AI Blog](https://blog.google/innovation-and-ai/infrastructure-and-cloud/global-network/virginia-community-investments/) on June 12, 2026.

We’re helping build the state’s next-generation workforce and investing in energy programs.

---

To read the full article, visit the original source page:

[Read the full article on Google AI Blog →](https://blog.google/innovation-and-ai/infrastructure-and-cloud/global-network/virginia-community-investments/)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[New light-powered chip could accelerate AI and quantum computing]]></title>
            <link>https://quantumcomputinginfo.com/blog/new-light-powered-chip-could-accelerate-ai-and-quantum-computing-a40621</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/new-light-powered-chip-could-accelerate-ai-and-quantum-computing-a40621</guid>
            <pubDate>Tue, 02 Jun 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[Scientists have created a tiny chip that can generate, steer, and read light-based information all in one device, marking a major leap toward ultra-fast, energy...]]></description>
            <content:encoded><![CDATA[
# New light-powered chip could accelerate AI and quantum computing

> **Source:** Originally published on [ScienceDaily Quantum Computers](https://www.sciencedaily.com/releases/2026/06/260601025343.htm) on June 2, 2026.

Scientists have created a tiny chip that can generate, steer, and read light-based information all in one device, marking a major leap toward ultra-fast, energy-efficient computing. The breakthrough uses atomically thin materials and nanoscale structures to control a unique quantum property of light called the “valley” degree of freedom, allowing information to be encoded in new ways.

---

To read the full article, visit the original source page:

[Read the full article on ScienceDaily Quantum Computers →](https://www.sciencedaily.com/releases/2026/06/260601025343.htm)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[Stanford quantum computing breakthrough uses twisted light to work without extreme cooling]]></title>
            <link>https://quantumcomputinginfo.com/blog/stanford-quantum-computing-breakthrough-uses-twisted-light-to-work-without-extreme-cooling-818331</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/stanford-quantum-computing-breakthrough-uses-twisted-light-to-work-without-extreme-cooling-818331</guid>
            <pubDate>Sat, 30 May 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[A new room-temperature quantum device uses twisted light to entangle photons and electrons, overcoming one of the biggest hurdles in quantum technology. The bre...]]></description>
            <content:encoded><![CDATA[
# Stanford quantum computing breakthrough uses twisted light to work without extreme cooling

> **Source:** Originally published on [ScienceDaily Quantum Computers](https://www.sciencedaily.com/releases/2026/05/260528074028.htm) on May 30, 2026.

A new room-temperature quantum device uses twisted light to entangle photons and electrons, overcoming one of the biggest hurdles in quantum technology. The breakthrough could pave the way for smaller, cheaper quantum systems with applications ranging from secure communications to future AI and computing platforms.

---

To read the full article, visit the original source page:

[Read the full article on ScienceDaily Quantum Computers →](https://www.sciencedaily.com/releases/2026/05/260528074028.htm)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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        <item>
            <title><![CDATA[New laboratory at MIT aims to advance quantum research for the nation]]></title>
            <link>https://quantumcomputinginfo.com/blog/new-laboratory-at-mit-aims-to-advance-quantum-research-for-the-nation-a62075</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/new-laboratory-at-mit-aims-to-advance-quantum-research-for-the-nation-a62075</guid>
            <pubDate>Thu, 28 May 2026 00:00:00 GMT</pubDate>
            <description><![CDATA[The Quantum Systems Laboratory will catalyze quantum innovation and be open to government, academic, and industry researchers....]]></description>
            <content:encoded><![CDATA[
# New laboratory at MIT aims to advance quantum research for the nation

> **Source:** Originally published on [MIT News Quantum](https://news.mit.edu/2026/new-laboratory-aims-to-advance-quantum-research-nation-0528) on May 28, 2026.

The Quantum Systems Laboratory will catalyze quantum innovation and be open to government, academic, and industry researchers.

---

To read the full article, visit the original source page:

[Read the full article on MIT News Quantum →](https://news.mit.edu/2026/new-laboratory-aims-to-advance-quantum-research-nation-0528)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
        </item>
        <item>
            <title><![CDATA[Atomically Thin Materials Significantly Shrink Qubits]]></title>
            <link>https://quantumcomputinginfo.com/blog/atomically-thin-materials-significantly-shrink-qubits-f96e6a</link>
            <guid isPermaLink="false">https://quantumcomputinginfo.com/blog/atomically-thin-materials-significantly-shrink-qubits-f96e6a</guid>
            <pubDate>Mon, 07 Feb 2022 00:00:00 GMT</pubDate>
            <description><![CDATA[Quantum computing is a devilishly complex technology, with many technical hurdles impacting its development. Of these challenges two critical issues stand out:...]]></description>
            <content:encoded><![CDATA[
# Atomically Thin Materials Significantly Shrink Qubits

> **Source:** Originally published on [IEEE Spectrum Quantum](https://spectrum.ieee.org/2d-hbn-qubit) on February 8, 2022.

Quantum computing is a devilishly complex technology, with many technical hurdles impacting its development. Of these challenges two critical issues stand out: miniaturization and qubit quality. IBM has adopted the superconducting qubit road map of reaching a 1,121-qubit processor by 2023, leading to the expectation that 1,000 qubits with today’s qubit form factor is feasible. However, current approaches will require very large chips (50 millimeters on a side, or larger) at the scale of small wafers, or the use of chiplets on multichip modules. While this approach will work, the aim is to attain a better path toward scalability. Now researchers at MIT have been able to both reduce the size of the qubits and done so in a way that reduces the interference that occurs between neighboring qubi...

---

To read the full article, visit the original source page:

[Read the full article on IEEE Spectrum Quantum →](https://spectrum.ieee.org/2d-hbn-qubit)
]]></content:encoded>
            <author>Quantum Editorial Team</author>
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