IonQ and the University of Washington Simulate Process Linked To The Universe’s Matter-Antimatter Imbalance
Quantum computer simulation of a symmetry-breaking phenomena has potential to advance the frontier of quantum-enabled fundamental physics.
The Big Bang should have made equal amounts of matter and antimatter. However, almost everything we see is made of matter, and there’s very little antimatter around. One of the biggest questions in physics is: what happened to the missing antimatter? Scientists are looking for the root cause of this imbalance to uncover insights into the fundamental laws of physics.
Using IonQ’s Forte Enterprise quantum system, researchers observed in real-time what’s known as a “lepton-number violation,” a phenomenon never directly simulated before on a quantum computer, providing further evidence that quantum computers may be able to model fundamental physics processes beyond the reach of classical systems. This demonstration opens a new path in the global efforts to understand why the universe is composed predominantly of matter rather than antimatter. The hypothesized “neutrinoless double-beta decay” nuclear process suggests that neutrinos are their own antiparticles and that violates a principle in the Standard Model of particle physics.
This technique allows scientists to use quantum computers and simulate the nuclear dynamics on the shortest of time-scales (10−24 seconds). This is shorter even than the femto-second (10−15 seconds) imaging demonstrations in the 1990s, which gave chemists new insights into chemical reactions, and revealed how atoms re-arrange during the breaking and formation of chemical bonds. Similar scientific breakthroughs could be enabled by this new quantum computing technique, with potential applications to high-energy physics laboratories around the globe.
“This achievement reinforces IonQ’s commitment to pushing the boundaries of what quantum computing can accomplish,” said Niccolo de Masi, CEO of IonQ. “By simulating a fundamental physics process so rare it’s never been observed in nature, we’re showing that quantum computers are not just theoretical tools. They’re engines of discovery.”
The simulation was conducted in collaboration with researchers from the University of Washington’s InQubator for Quantum Simulation (IQuS) and the
“This work represents a critical first step in exploring the re-arrangement of quarks and gluons in this fundamental and complex decay-mode of a nucleus on yocto-second time-scales (10-24) seconds),” said Martin Savage, Professor of Physics at the University of
The findings not only validate the use of quantum modeling in nuclear and particle physics but also set the stage for future research into other processes where lepton number violation may occur. As hardware capabilities grow, IonQ aims to expand these techniques to explore other symmetry-breaking phenomena and advance the frontier of quantum-enabled fundamental physics. The full findings and research paper are available at https://arxiv.org/abs/2506.05757.
About IonQ
IonQ, Inc. is a leading commercial quantum computing and networking company, delivering high-performance systems aimed at solving the world’s largest and most complex commercial and research use cases. IonQ’s current generation quantum computers, IonQ Forte and IonQ Forte Enterprise, are the latest in a line of cutting-edge systems and represent the forefront of the company’s technological roadmap as it advances toward its goal of building quantum computers with 2 million physical qubits by 2030. The company’s innovative technology and rapid growth were recognized in Newsweek’s 2025 Excellence Index 1000, Forbes’ 2025 Most Successful Mid-Cap Companies list, and Built In’s 2025 100 Best Midsize Places to Work in
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