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Nuclear Physicists Demonstrate Scalable Quantum Circuits for Simulating Fundamental Physics on IBM Processors

Mohamed Abdel-Kareem
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⚡ Quantum Brief
University of Washington nuclear physicists led the largest digital quantum simulation to date on IBM processors, scaling circuits beyond 100 qubits to model fundamental physics—marking a breakthrough for quantum advantage in particle physics. The team developed scalable quantum circuits by exploiting symmetries and length-scale hierarchies, enabling preparation of localized quantum states like vacuums and hadrons in 1D quantum electrodynamics. Researchers first designed circuits classically for small systems, then expanded them to 100+ qubits on IBM hardware, demonstrating a pathway for simulating extreme conditions unattainable via classical methods. Applications include modeling pre-collision vacuums, high-density matter, and cosmic phenomena like supernovae element production, addressing long-standing questions in matter-antimatter asymmetry. Funded by the DOE and Quantum Science Center, the work was published in PRX Quantum and Physical Review D, advancing quantum simulations for the Standard Model.
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Nuclear Physicists Demonstrate Scalable Quantum Circuits for Simulating Fundamental Physics on IBM Processors Nuclear physicists have successfully performed the largest digital quantum simulation to date using IBM quantum computers, demonstrating scalable quantum circuits for preparing initial states for simulations of fundamental physics. The research, led by scientists from the InQubator for Quantum Simulation (IQuS) at the University of Washington, addresses a critical challenge in using quantum computing to solve complex problems in the Standard Model of particle physics. The method leverages symmetries and hierarchies in length scales to create scalable quantum circuits for preparing states with localized correlations, such as the quantum vacuum and hadrons, in one spatial dimension within quantum electrodynamics. Researchers first determined the necessary circuits for small systems using classical computers, then scaled these circuits to systems of more than 100 qubits on IBM’s quantum computers. This achievement provides a promising way to eventually perform dynamical simulations of matter in extreme conditions that are beyond the capabilities of classical computing alone. Expected applications include simulating the vacuum before a particle collision, systems at very high densities, and providing insights into questions of matter-antimatter imbalance and how supernovae produce heavy elements. The research was supported by the Department of Energy (DOE) Office of Science, the Quantum Science Center (QSC) (a DOE National Quantum Information Science Research Center), and leveraged IBM Quantum services. The results were published across two papers in PRX Quantum and Physical Review D. Read the full announcement from the DOE Office of Science here. November 23, 2025 Mohamed Abdel-Kareem2025-11-23T07:49:49-08:00 Leave A Comment Cancel replyComment Type in the text displayed above Δ This site uses Akismet to reduce spam. Learn how your comment data is processed.

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energy-climate
government-funding
ibm
quantum-computing
quantum-hardware
quantum-simulation

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Source: Quantum Computing Report

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