Resolving Structure in Prethermal Floquet Dynamics with Precision Quantum Computation
AuthorsEyal Leviatan, Tasneem Watad, Roy Perry, Lukas Broers, Mohammed Zuhair Mullath, Ori Alberton, Itai Arad, Yosi Atia, Eyal Bairey, Shaul Barkan, Matan Ben Dov, Asaf Berkovitch, Ewout van den Berg, Itsik Cohen, Omri Golan, Ilya Gurwich, Avieli Haber, Barak A. Katzir, Oded Kenneth, Roei Levi, Yotam Y. Lifshitz, Yaron Lukovsky, Ron Melcer, Adiel Meyer, Boris Muratov, Aviad Panahi, Gili Schul, Tali Shnaider, Maor Shutman, Alireza Seif, Tomonori Shirakawa, Asif Sinay, Vincent P. Su, Hayk Tepanyan, Omri Trebitch, Assaf Zubida, Dorit Aharonov, Hrant Gharibyan, Abhinav Kandala, Seiji Yunoki, Netanel H. Lindner
Resources
Researchers use precision error-mitigated quantum hardware to observe long-lived Floquet oscillations in a regime where classical simulations struggle.
Key results
Heavy-hex lattice qubits reached with IBM Heron r3 and QESEM mitigation.
Average absolute precision achieved for late-time magnetization estimates.
Oscillation period measured relative to the underlying Floquet drive.
Approximate reach increase at fixed accuracy relative to unmitigated execution.
All-size finite-size fit for the asymptotic oscillation amplitude.
What the paper found
This study uses precision quantum computation to resolve prethermal dynamics in a periodically driven mixed-field Ising magnet on heavy-hex lattices. The experiment runs up to 74 qubits on an IBM Heron r3 processor, with QESEM error mitigation combining probabilistic error cancellation and zero-noise extrapolation to measure magnetization at absolute precision 0.005. The data reveal subharmonic oscillations with a period of 4 times the Floquet drive, persisting through late cycles where PEPS-BP tensor networks, PEPO-BP, and sparse Pauli-path simulations lose controlled convergence; even NVIDIA H100 calculations and large-scale classical resources do not reproduce the late-time response reliably. Error mitigation extends the circuit-volume reach by approximately 30 relative to unmitigated execution, while independent checks on Quantinuum H2 and Quantinuum Helios agree within statistical uncertainties. Combining exact results for 21, 28, and 35 qubits with mitigated measurements at 51 and 74 qubits enables finite-size scaling of the oscillation amplitude. The all-size fit yields an asymptotic offset of 0.0096, providing strong evidence that the oscillatory response survives in the thermodynamic limit of heavy-hex ladders. The result is not a complexity-theoretic proof of quantum advantage, but it demonstrates that error-mitigated processors can act as quantitative instruments for discovering non-equilibrium many-body physics beyond the controlled regime of current classical simulations.
Original abstract
Periodically driven interacting quantum many-body systems can exhibit long-lived prethermal dynamics, where local observables retain coherent structure even as entanglement and operator complexity grow. Accessing this regime at the system sizes and times needed to determine physical properties of the prethermal state remains a central challenge: state-of-the-art classical methods become unreliable, while noise in quantum hardware degrades observable expectation values. Here we overcome these limitations for a Floquet Ising magnet realized on a heavy-hex lattice. Using the advanced error mitigation software QESEM on an IBM Heron r3 superconducting quantum processor, we measure magnetization dynamics with percent-level precision and resolve long-lived subharmonic prethermal oscillations in systems of up to 74 qubits. These experiments reach regimes for which leading tensor-network simulations fail to converge, while sparse Pauli-path simulations remain strongly truncation dependent despite extensive computations on advanced GPUs and the Fugaku supercomputer. Leveraging this quantum-accessible regime, we extend finite-size scaling to larger systems and find an unexpectedly slow decrease of the oscillation amplitude with system size, providing strong evidence that this oscillatory response persists in the thermodynamic limit of heavy-hex ladders. A hierarchy of mitigation and validation tests, including unbiased error mitigation, agreement between independent mitigation estimators, noise-model validation on the superconducting hardware, and cross-platform corroboration at selected Floquet cycles on Quantinuum System Model H2 and Quantinuum Helios trapped-ion hardware, supports the reliability of these findings. Our work establishes error-mitigated quantum processors as quantitative scientific instruments for discovering new physics in non-equilibrium quantum matter.
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