Holographic dynamics simulations with a trapped-ion quantum computer

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作者
Eli Chertkov
Justin Bohnet
David Francois
John Gaebler
Dan Gresh
Aaron Hankin
Kenny Lee
David Hayes
Brian Neyenhuis
Russell Stutz
Andrew C. Potter
Michael Foss-Feig
机构
[1] Quantinuum,Institute for Condensed Matter Theory and IQUIST and Department of Physics
[2] University of Illinois at Urbana-Champaign,Department of Physics
[3] University of Texas at Austin,Department of Physics and Astronomy, and Stewart Blusson Quantum Matter Institute
[4] University of British Columbia,undefined
[5] Google Research,undefined
来源
Nature Physics | 2022年 / 18卷
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摘要
Quantum computers promise to efficiently simulate quantum dynamics, a classically intractable task central to fields ranging from chemistry to high-energy physics. Yet, quantum computational advantage has only been demonstrated for artificial tasks such as random circuit sampling, and hardware limitations and noise have limited experiments to qualitative studies of small-scale systems. Quantum processors capable of high-fidelity measurements and qubit reuse enable a recently proposed holographic technique that employs quantum tensor-network states, a class of states that efficiently compress quantum data, to simulate the evolution of infinitely long, entangled initial states using a small number of qubits. Here we benchmark this holographic technique in a trapped-ion quantum processor using 11 qubits to simulate the dynamics of an infinite entangled state. We observe the hallmarks of quantum chaos and light-cone propagation of correlations, and find excellent quantitative agreement with theoretical predictions for the infinite-size limit of the implemented model with minimal post-processing or error mitigation. These results show that quantum tensor-network methods, paired with state-of-the-art quantum processor capabilities, offer a viable route to practical quantum computational advantage on problems of direct interest to science and technology in the near term.
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页码:1074 / 1079
页数:5
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