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Team brings <b>quantum computing</b> into FLiBe chemistry calculations

According to a preprint paper published on arXiv that describes the results, it is the first demonstration of this type of calculation for a charged ionic system, where electrostatic and polarization effects add challenging complexity—but it’s a type of complexity where quantum computing tends to excel over classical solutions. Tom Beck, section head for science engagement for the National Center for Computational Sciences at Oak Ridge National Laboratory, said the project has exceeded expectations. “When we started this work maybe five months ago, I did not expect to be at this place this soon,” he said. The team calculated tritium binding energies in three FLiBe systems with 21–23 atoms, with each system comprising nine clusters. They used a workflow that combined AI, classical computing, and quantum computing, breaking the calculations into stages to take advantage of the strengths of each process. The results were promising, matching existing calculations, and the researchers identified some advances that will be required to scale up the predictions to realistic molten salt environments. One key change is that the size of the clusters will need to be increased to achieve bulk liquid properties, but the team has experience to lean on. “This work builds on our advances in simulating complex biological systems at scale, including proteins spanning 12,635 atoms, and extends those techniques into materials science to explore fusion-relevant systems with greater accuracy and efficiency,” said Kenneth Merz, a staff scientist at Cleveland Clinic. According to the paper, the computational challenges involved in developing quantum-dependent calculation of molten salt–free energy are relevant to other areas of chemistry, including catalysis and biochemistry. “Improving the accuracy-cost tradeoff of heterogeneous quantum-classical methods with molten salts as a target system can provide tangible benefit transferrable to other fields of quantum chemistry,” the paper stated. “These results add to mounting

World's first superconducting quantum heat engine looks to transform <b>quantum computing</b>

World’s first superconducting quantum heat engine looks to transform quantum computing A qubit-based heat engine completes an Otto cycle near absolute zero and points toward simpler large-scale quantum computers. Edited By: Joshua Shavit A heat engine small enough to fit inside a superconducting circuit has converted heat into measurable work near absolute zero, offering a new test bed for quantum thermodynamics and a possible route toward simpler, larger quantum computers. The device uses a transmon qubit, a resonator and a quantum-circuit refrigerator. Together, they form a microscopic version of an Otto engine, the same broad thermodynamic cycle used in many car engines. Aalto University researchers operated the system inside a cryostat, where temperatures sit close to absolute zero. Even in those conditions, tiny amounts of heat remain. The team showed that this heat could be directed through the circuit and converted into positive work. The study, led by Academy Professor Mikko Möttönen, was published in Nature Communications. An engine built around a qubit Classical heat engines use temperature differences to produce useful energy. Steam engines helped launch the Industrial Revolution, while modern heat engines still power vehicles and many electricity-generating plants. The new device applies the same basic idea to a quantum system. “In our experiment, we built a nanofabricated heat engine using superconducting circuits and operated it in a cryostat near absolute zero. At its heart is a transmon qubit, one of the basic building blocks of modern quantum technologies,” said first author Tuomas Uusnäkki. The transmon served as the engine’s working material. Researchers changed its energy levels with magnetic-flux pulses and controlled its temperature with a quantum-circuit refrigerator, or QCR. That refrigerator played an unusual double role. Traditional engines rely on separate hot and cold environments. Here, one tunable device supplied both. “Our quantum-circuit refrigerator can be tuned

Imec and Diraq Demonstrate First Coherent Operation of Eight Silicon MOS Spin Qubits ...

Imec, a world-leading research and innovation hub for advanced semiconductor technologies, and Diraq, a pioneer of silicon-based quantum computing, today announce they have demonstrated the coherent operation and readout of an eight silicon MOS spin-qubit array designed and fabricated on imec’s advanced 300 mm spin-qubit technology platform using a CMOS-compatible process. The results, published in a Nature Communications paper, mark an important step toward scalable quantum processors manufactured with the same industrial technologies used to produce today’s most advanced semiconductor chips. Silicon spin qubits are widely regarded as one of the most promising pathways to large-scale quantum computing because they can exploit the infrastructure, supply chains and manufacturing expertise already developed by the semiconductor industry. The work of this paper builds on imec and Diraq’s earlier demonstration, in a 2025 Nature paper, showing that industrially manufactured silicon spin qubits can achieve fidelity levels required for quantum error correction. While that result established the viability of individual and two-qubit building blocks, today’s work extends this and demonstrates that imec’s process can be scaled to larger arrays: an eight-qubit linear array was demonstrated, maintaining the coherence and controllability required for future large-scale quantum computers. In addition, scaling the readout architecture for this larger array does not require a significant increase in sensor count, wiring density, or thermal load; this type of favorable scaling ratio points toward arrays that remain highly compact as they grow, which is required for large scale quantum processors. The eight-qubit devices were fabricated on imec’s 300 mm silicon spin-qubit platform, which leverages CMOS-compatible manufacturing technology developed over nearly a decade of process optimization and engineering, bridging the gap between laboratory demonstrations and manufacturable quantum technologies. “The future of quantum computing depends not only on qubit quality but also on the ability to manufacture increasingly complex quantum processors with

State, Roadrunner lure Illinois <b>quantum</b> startup to Albuquerque

TECHNOLOGY State, Roadrunner lure Illinois quantum startup to Albuquerque Photon Queue is getting $500,000 to grow its quantum memory tech The New Mexico Economic Development Department and Roadrunner Venture Studios awarded $500,000 in grant funding to Photon Queue, an Illinois quantum computing startup, to locate and hire in Albuquerque. Roadrunner Venture Studios is an Albuquerque firm that invests in early-stage deep technology startups such as Photon Queue, a two-year-old company, and provides them with resources to grow. Last year, the state awarded Roadrunner $25 million to create a quantum venture studio campus in Downtown Albuquerque. There, quantum computing companies and enthusiasts can test their ideas on the world’s first open-access quantum network and expensive machinery such as dilution refrigerators that run it. “Photon Queue is exactly the kind of high-growth, high-impact company New Mexico is working to attract and support,” Nora Meyers Sackett, director of the department’s Technology and Innovation Office, said in a statement. “The company’s decision to establish operations here reflects the strength of New Mexico’s emerging quantum ecosystem and our commitment to investing in the next generation of advanced technology jobs.” Photon Queue is developing memory systems for quantum computing that its co-founder and CEO, Nathan Arnold, said will bypass the need for that expensive hardware. In an interview, Arnold likened his technology to RAM, or random-access memory, used in traditional computing. “Our overall goals are to become the premier provider of this memory technology to the quantum computing field,” Arnold said. “Really, we want our memory system to be embedded into the full stack of every quantum computer out there regardless of the qubit modality.” Qubits are the units of information that make quantum computing powerful. Compared to binary bits of 1s and 0s used to transmit data in modern computing, qubits can exist in multiple

Jane Goodall Institute and FormationQ Launch <b>Quantum</b>-Enhanced Primate Behavior Study

The Jane Goodall Institute (JGI) USA and quantum adoption firm FormationQ have announced a first-of-its-kind, two-year research partnership to apply quantum computing to behavioral ecology. Launching on World Chimpanzee Day, the program will explore how environmental and ecological variables influence whether primate societies evolve toward cooperation or intergroup conflict. Mapping the Evolutionary Divide via Agent-Based Modeling The program, Ecology of War and Peace, leverages more than six decades of field observations gathered by Dr. Jane Goodall in Gombe, Tanzania, to solve a long-standing evolutionary puzzle. Despite sharing close genetic lineages, chimpanzees frequently engage in organized, lethal intergroup aggression, whereas bonobos peacefully socialize across community boundaries. To model this behavioral divide, researchers rely on B3GET, a highly complex agent-based model developed at the University of Minnesota. In this virtual environment, digital primates forage, migrate, reproduce, and clash across dynamic artificial terrains. - The Computational Bottleneck: Simulating how dozens of shifting ecological variables—such as localized food distribution, seasonal home ranges, and community cohesion rules—interact simultaneously quickly overwhelms classical computing architectures. - The Quantum-Classical Hybrid Approach: FormationQ will work alongside the University of Minnesota Supercomputing Institute to map these multi-variable simulations onto IonQ’s trapped-ion quantum computers. - Conservation Outcomes: By resolving these highly complex models, the team aims to better understand how resource scarcity and habitat loss correlate with wild primate mortality. These findings will assist conservationists in modeling population survival rates and identifying optimal habitats for targeted protection. The initiative represents a unique, non-traditional use case for quantum algorithms, demonstrating how quantum hardware can simulate highly complex, non-linear natural systems well before fault-tolerant, utility-scale devices are fully realized. Review the official joint announcement on the Jane Goodall Institute Press Room here. July 14, 2026

Quantinuum, Rolls-Royce, Riverlane, and EPCC Partner to Accelerate Fluid Dynamics Simulations

Quantinuum (NASDAQ: QNT), Rolls-Royce, Riverlane, and EPCC (the UK National Supercomputing Centre at the University of Edinburgh) have announced a multi-year collaboration to develop hybrid quantum-classical workflows. The partnership will focus on modeling complex computational fluid dynamics (CFD) for gas turbine design. [ Joint CFD Project Matrix ] Hardware Partner ──► Quantinuum (providing access to the 98-qubit Helios platform). Industrial Lead ──► Rolls-Royce (providing gas turbine use cases and domain expertise). Error Correction ──► Riverlane (providing QEC stack and fault-tolerant algorithms). HPC Integration ──► EPCC (managing supercomputing compiler & hybrid workflows).Transitioning from Emulation to Physical Hardware The agreement marks a shift for Rolls-Royce, Riverlane, and EPCC. For nearly five years, these three partners have co-developed and refined hybrid algorithms using classical emulators. Under this new agreement, the consortium will begin executing these algorithms on physical quantum hardware, utilizing Quantinuum’s trapped-ion Helios platform, with future scaling planned for upcoming systems like Sol and Apollo. - Addressing CFD Bottlenecks: Simulating fluid dynamics inside gas turbines is computationally intensive, frequently creating bottlenecks in classical supercomputing design cycles. - Hybrid Workflow Integration: Rather than replacing classical supercomputers, the project explores how fault-tolerant quantum computers can accelerate specific mathematical subroutines. EPCC will lead the effort to compile, emulate, and partition tasks between classical and quantum resources. - UK Quantum Strategy Alignment: The multi-year project directly supports the UK Government’s mission to field “teraQuOp” systems capable of executing one trillion error-free quantum operations. (Editor’s Note: This hardware-focused collaboration builds on Rolls-Royce’s ongoing software exploration in this domain, complementing their recent work with Classiq to integrate quantum linear solvers into iterative CFD environments.) Review the official joint announcement via the Quantinuum Pressroom here. July 14, 2026

Quantinuum, Rolls-Royce, Riverlane, and EPCC Partner to Accelerate Fluid Dynamics Simulations

Quantinuum (NASDAQ: QNT), Rolls-Royce, Riverlane, and EPCC (the UK National Supercomputing Centre at the University of Edinburgh) have announced a multi-year collaboration to develop hybrid quantum-classical workflows. The partnership will focus on modeling complex computational fluid dynamics (CFD) for gas turbine design. [ Joint CFD Project Matrix ] Hardware Partner ──► Quantinuum (providing access to the 98-qubit Helios platform). Industrial Lead ──► Rolls-Royce (providing gas turbine use cases and domain expertise). Error Correction ──► Riverlane (providing QEC stack and fault-tolerant algorithms). HPC Integration ──► EPCC (managing supercomputing compiler & hybrid workflows).Transitioning from Emulation to Physical Hardware The agreement marks a shift for Rolls-Royce, Riverlane, and EPCC. For nearly five years, these three partners have co-developed and refined hybrid algorithms using classical emulators. Under this new agreement, the consortium will begin executing these algorithms on physical quantum hardware, utilizing Quantinuum’s trapped-ion Helios platform, with future scaling planned for upcoming systems like Sol and Apollo. - Addressing CFD Bottlenecks: Simulating fluid dynamics inside gas turbines is computationally intensive, frequently creating bottlenecks in classical supercomputing design cycles. - Hybrid Workflow Integration: Rather than replacing classical supercomputers, the project explores how fault-tolerant quantum computers can accelerate specific mathematical subroutines. EPCC will lead the effort to compile, emulate, and partition tasks between classical and quantum resources. - UK Quantum Strategy Alignment: The multi-year project directly supports the UK Government’s mission to field “teraQuOp” systems capable of executing one trillion error-free quantum operations. (Editor’s Note: This hardware-focused collaboration builds on Rolls-Royce’s ongoing software exploration in this domain, complementing their recent work with Classiq to integrate quantum linear solvers into iterative CFD environments.) Review the official joint announcement via the Quantinuum Pressroom here. July 14, 2026 Leave A Comment

Jane Goodall Institute and FormationQ Launch <b>Quantum</b>-Enhanced Primate Behavior Study

The Jane Goodall Institute (JGI) USA and quantum adoption firm FormationQ have announced a first-of-its-kind, two-year research partnership to apply quantum computing to behavioral ecology. Launching on World Chimpanzee Day, the program will explore how environmental and ecological variables influence whether primate societies evolve toward cooperation or intergroup conflict. Mapping the Evolutionary Divide via Agent-Based Modeling The program, Ecology of War and Peace, leverages more than six decades of field observations gathered by Dr. Jane Goodall in Gombe, Tanzania, to solve a long-standing evolutionary puzzle. Despite sharing close genetic lineages, chimpanzees frequently engage in organized, lethal intergroup aggression, whereas bonobos peacefully socialize across community boundaries. To model this behavioral divide, researchers rely on B3GET, a highly complex agent-based model developed at the University of Minnesota. In this virtual environment, digital primates forage, migrate, reproduce, and clash across dynamic artificial terrains. - The Computational Bottleneck: Simulating how dozens of shifting ecological variables—such as localized food distribution, seasonal home ranges, and community cohesion rules—interact simultaneously quickly overwhelms classical computing architectures. - The Quantum-Classical Hybrid Approach: FormationQ will work alongside the University of Minnesota Supercomputing Institute to map these multi-variable simulations onto IonQ’s trapped-ion quantum computers. - Conservation Outcomes: By resolving these highly complex models, the team aims to better understand how resource scarcity and habitat loss correlate with wild primate mortality. These findings will assist conservationists in modeling population survival rates and identifying optimal habitats for targeted protection. The initiative represents a unique, non-traditional use case for quantum algorithms, demonstrating how quantum hardware can simulate highly complex, non-linear natural systems well before fault-tolerant, utility-scale devices are fully realized. Review the official joint announcement on the Jane Goodall Institute Press Room here. July 14, 2026 Leave A Comment

Wilson Sonsini Advises Oratomic on $300 Million Series A Financing

On July 7, 2026, Oratomic, a neutral atom quantum computing company focused on building the world’s first fault-tolerant quantum computers, announced that it raised $300 million in its Series A round co-led by ARCH Venture Partners, Spark Capital, and Khosla Ventures, alongside Bezos Expeditions, Index Ventures, General Catalyst, Lowercarbon Capital, Bain Capital, Formation, Nebular, David and Scott Aaronson, and others. Wilson Sonsini Goodrich & Rosati advised Oratomic on the transaction. The Wilson Sonsini team that advised Oratomic on the transaction includes Andrew Gillman, Madisyn Klein, and Patrick Begian. For more information, please see Oratomic's blog post. Additional coverage can be found on TechCrunch.

War Department Details Post-<b>Quantum</b> Cryptography Roadmap

War Department Details Post-Quantum Cryptography Roadmap The Pentagon is accelerating PQC adoption across military networks, weapons systems and the defense industrial base under a new strategy. The War Department’s first enterprise-wide strategy to transition military systems to post-quantum cryptography (PQC) sets firm deadlines to secure high-impact national security systems by 2030 and the broader force by 2031 as quantum computing threatens today’s encryption. The strategy outlined how the department will deploy quantum-resistant cryptography across military networks, command-and-control systems and weapons platforms. It followed one day after President Donald Trump’s June 22 executive orders on quantum innovation and national security. “Empowering the warfighter is the relentless objective that drives every program,” Pentagon CIO Kirsten Davies said in the strategy’s accompanying fact sheet. “To deliver on Secretary [Pete] Hegseth’s vision of the most lethal and dominant military force in the world, our networks must be impenetrable.” While practical quantum computers remain years away, officials warn adversaries could already be collecting encrypted military communications with plans to decrypt them once the technology matures — a threat commonly known as “harvest now, decrypt later.” The strategy aims to replace today’s vulnerable public-key encryption with quantum-resistant algorithms before that happens. Experts say national security systems must begin the transition now because migrating cryptographic infrastructure across the Defense Department will take years. “If there are other nations that get ahead of us as far as post-quantum cryptography is concerned, they have a head start in terms of security,” Prathibha Rama, computer engineer at Johns Hopkins University Applied Physics Laboratory, said during CyberScape: The Federal Cybersecurity Summit in April. “They won’t have to worry about it in five to 10 years down the line when quantum computers are around. We’ll be behind.” DOW’s Enterprise Migration Strategy The plan establishes five priorities for the department’s transition: - Centralized

Tennessee attracting <b>quantum</b> teams with $3M fund | Interests | kpvi.com

(The Center Square) – Tennessee officials are establishing a $3 million funding commitment to attract quantum computing teams to the state, according to the governor's office. The program announced Monday would provide National Science Foundation X-Labs quantum teams up to $3 million, workforce development, and partnerships with state industries, national laboratories, universities and utilities, the governor's office said. Gov. Bill Lee added a separate $43 million to the fiscal year 2027 budget to "accelerate Tennessee’s quantum computing industry by attracting substantial federal and private-sector investment and to translate our scientific strengths into durable, high-wage job creation across advanced manufacturing, life sciences, and logistics industries." “Over the past few years, Tennessee has earned the reputation as having one of the strongest quantum ecosystems in the country,” Lee said in a statement. “This investment will help ensure that the companies developing tomorrow's quantum technologies will choose our state to grow, cultivate high-quality jobs and bring new innovations.” The state's economic arm for startups, known as LaunchTN, is giving companies that are awarded National Science Foundation X-Labs grants priority for matching state funds, according to the governor's office. “Tennessee is uniquely positioned to help quantum companies move from breakthrough research to real-world deployment,” said Deputy Governor and Economic and Community Development Commissioner Stuart McWhorter. “We’re shifting our economic development strategy from simply recruiting projects to orchestrating ecosystems where companies and innovators can access the partners, infrastructure, and talent they need to succeed, and today’s announcement signals a clear message that we’re ready to do so.” The National Science Foundation, a federal agency, defines quantum technologies as those that "make use of quantum properties (such as entanglement and superposition) found in particles of matter and energy, like atoms and photons. This allows quantum sensors to detect finer details and quantum computers to potentially solve

DOE's Northeastern &amp; Brookhaven Lab Expand <b>Quantum Computing</b> Toolkit

Researchers have developed a new quantum algorithm, the quantum Hermite transform, representing a move beyond the limited number of operations currently available for quantum computers to outperform classical systems. The collaborative effort between the U.S. Department of Energy’s Brookhaven National Laboratory, Northeastern University, Google Quantum AI, and University of Texas at Austin addresses a critical need for more versatile “primitives,” the fundamental building blocks of quantum computation. Hermite transforms are widely used in engineering and physics to describe the energy levels of the quantum harmonic oscillator and also underpin many Gaussian systems common in machine learning and data science, suggesting broad applications for this new capability. “The quantum Hermite transform is a quantum algorithm that implements the Hermite transform on a quantum state,” said Ning Bao, an assistant professor at Northeastern University with a joint appointment in Brookhaven Lab’s Computing and Data Sciences Directorate, whose DOE-funded project initiated the work. Quantum Hermite Transform as a Novel Primitive The development of genuinely useful quantum algorithms remains a significant hurdle in realizing the promise of quantum computing; currently, the field suffers from a limited number of standardized operations, or “primitives,” capable of delivering a quantum advantage. This innovation isn’t simply a quantum analogue of a classical mathematical tool, but a structurally distinct primitive poised to expand the scope of quantum computation, particularly in areas like artificial intelligence. Historically, performing these transforms on quantum computers has been inefficient. The team overcame this obstacle by designing a quantum circuit that executes the transform with logarithmic overhead, a substantial improvement even for large quantum states. This circuit leverages precise approximations of Hermite functions and a technique to the harmonic oscillator, allowing quantum computers to rapidly calculate future states. Combined with novel methods for configuring qubits, the quantum Hermite transform emerges as a practical and precise

NVIDIA Ising Decoding Cuts Color Code Logical Error Rates by Over 300X

Useful quantum computers will require fault tolerant logical operations. Researchers are actively exploring many different quantum error correction (QEC) codes to enable this, improving the Logical Error Rates (LER) of Quantum Processing Units (QPUs). While it is well understood how to run logical operations with surface codes (which belong to the topological code family) via lattice surgery, they are qubit efficient for memory but suboptimal relative to other topological codes for performing fault-tolerant logical computation. Quantum low-density parity-check (QLDPC) codes are another type of QEC scheme that require the least physical qubits for memory due to their constant rates. However, it is still unclear how both Clifford and non-Clifford gates can be performed efficiently at the logical level with QLDPC codes. Color Codes are another type of topological code that are well understood. Although they require more physical qubits for memory than surface codes to achieve the same target logical failure rate, they can perform logical gates more efficiently than surface codes due to their ability to do all Clifford gates transversally and the symmetry of their representation resulting in simpler lattice surgery operations. With fast and accurate decoders, it is likely that parameter regimes exist where logic with color codes could be more efficient than logic with surface codes. Given that decoding color codes is much harder than decoding surface codes, color codes have historically been shelved due to a lack of fast and accurate decoders, which enable users to leverage these codes in real time. NVIDIA Ising Decoder ColorCode 1 Fast is designed to accelerate and improve the LER of color code decoders, enabling more than 347.7x better LER, and 7.3x faster runtime compared with the state of the art color code decoder Chromobius for d=31 and physical error rate of 0.3%. Such results bring color codes back

Science Policy This Week: July 6, 2026

NSF to bar research collaborations with restricted foreign entities The National Science Foundation announced last week that it plans to introduce a new policy prohibiting the use of NSF funds for research in collaboration with entities that the Department of Defense and other agencies have flagged as national security risks. The policy refers to lists of entities that include many Chinese companies, such as telecommunications giant Huawei, and some Chinese universities. The forthcoming policy, which NSF plans to implement in fiscal year 2027, alongside the agency’s new financial assistance guidance, would also prohibit leading researchers on NSF awards from holding appointments with, or receiving research support from, any restricted entities. When the policy goes into effect, institutions submitting NSF proposals will be required to certify compliance with the new requirements and will be responsible for ensuring researchers are informed of the changes. NSF’s current research security risk mitigation measures are “not sufficient,” the agency said in the Dear Colleague Letter announcing the policy. The agency also said that aligning its approach with the Department of Defense’s research collaboration rules (which were introduced earlier this year) would promote consistency and reduce administrative burden. Republicans on the House Committee on the CCP, who have pushed for tighter restrictions on research collaboration, welcomed NSF’s announcement, with Chairman John Moolenaar (R-MI) describing the changes as “commendable and commonsense” policy reforms. “Prohibiting federal funding from being used to collaborate with Chinese entities that are national security risks or human rights abusers is straightforward and all federal agencies should follow the lead of the Pentagon and NSF,” Moolenaar said. In his statement, Moolenaar called on Congress to pass the Securing Innovation and Research from Adversaries Act – a bill he introduced in May that would codify similar rules and apply them across the federal government. The

US <b>quantum computing</b> needs a national buyer

US quantum computing needs a national buyer Subscribe to unlock this article Try unlimited access Only $1 for 4 weeksThen $75 per month. Complete digital access to quality FT journalism on any device. Cancel anytime during your trial. Explore more offers. Standard Digital $45 per month Essential digital access to quality FT journalism on any device. Pay a year upfront and save 20%. Premium Digital Complete coverage $75 per month Complete digital access to quality FT journalism with expert analysis from industry leaders. Pay a year upfront and save 20%. Premium & FT Weekend Print $79 per month FT Weekend newspaper delivered Saturday plus complete digital access. Check whether you already have access via your university or organisation. Terms & Conditions apply Explore our full range of subscriptions. For individuals Discover all the plans currently available in your country For multiple readers Digital access for organisations. Includes exclusive features and content. Why the FT? See why over a million readers pay to read the Financial Times.

Containing multitudes: SLAC scientist collaborates to create scalable qubits

Containing multitudes: SLAC scientist collaborates to create scalable qubits Developing quantum dots for next-generation science News Room Studying an object with zero dimensions takes serious creativity. Consider the singularity — a point packed with infinite energy that sparked the Big Bang. Or the humble mathematical point, an abstract but indispensable fixture in space-time. Grasping a thing that has no size or shape demands imagination and rigor. Or take qubits. Manipulating these zero-dimensional, information-carrying ripples in quantum space requires mental and manual dexterity. Yet those who work on qubits seldom tout the rich set of skills they bring to bear on their research. The scientific endeavor’s many creative dimensions are what drew Shannon Harvey to the work of finessing these dimensionless bits of information. “What I love about working in quantum information is that we can use today’s technologies to play with nature’s quantum features, something that until recently would have seemed incredible,” said Harvey, a scientist at the U.S. Department of Energy’s (DOE) SLAC National Accelerator Laboratory. “I really thrive on the multifaceted nature of this research, solving and coming up with problems by embedding myself in the experimental details and trying to understand how they all fit together. For me, scientific exploration involves reading and writing papers, solving math problems, even soldering and welding. Often within the same day.” Harvey brings her multifaceted set of skills to Q-NEXT, a DOE National Quantum Information Science Research Center led by DOE’s Argonne National Laboratory in partnership with SLAC. A national research hub, Q-NEXT aims to coax nature’s quantum features into sharing information over distances large and small. It’s a collaborative effort that’s helped by a knack for futzing with particles. The particle of Harvey’s attention is a type of qubit called a quantum dot. Picture an electron, a tiny ripple bopping

The Aspirations Of HPE And Dell In The <b>Quantum</b>-Classical HPC Datacenter

The Aspirations Of HPE And Dell In The Quantum-Classical HPC Datacenter There are any number of ways to track the expanding development of quantum computing, from the strides being made in error-corrected qubits – logical qubits – and fault-tolerant systems to the software and algorithms cropping up around them. Another way is look at the work traditional hardware OEMs are putting into collaborating with quantum computing vendors and getting the necessary infrastructure in order for hybrid quantum-classical HPC datacenters. Such hybrid datacenters going to be what will bridge the gap between theoretical vision of quantum computing and the practical use by enterprises. As we have previously covered, Cisco Systems is accelerating its work in creating the vendor-neutral networking layer for quantum computing, from developing the architecture to its Universal Quantum Switch prototype, unveiled in April. Nvidia clearly sees a quantum future where QPUs share the stage with GPUs and CPUs, along with the quantum-focused product lineup it’s putting together. “We don’t build quantum computers, and yet we are deeply integrated into the quantum computing industry and we create libraries,” Nvidia co-founder and chief executive officer Jensen Huang said last year. “CUDA-Q is the programming model for hybrid classical accelerated quantum. We have cuQuantum, libraries that help you simulate quantum circuits, and DGX-Quantum, to do error correction in quantum computers. We partner with them, we support them, we help them in any possible way.” More recently, at their respective user conferences, both HPE and Dell gave quantum computing a greater presence than in past events, putting a spotlight on everything from partnerships to architecture for the hybrid datacenters as well as the cloud to expectations of how quantum computing will roll out. At its Discover 2026 show last month, HPE announced partnerships with Intel, IQM Quantum Computers, Quantinuum, QuEra, and Rigetti,