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Journal Article

Quantum Many-Body Jarzynski Equality and Dissipative Noise on a Digital Quantum Computer

MPS-Authors
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Hahn,  Dominik
Max Planck Institute for the Physics of Complex Systems, Max Planck Society;

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Luitz,  David J.
Max Planck Institute for the Physics of Complex Systems, Max Planck Society;

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Bukov,  Marin
Max Planck Institute for the Physics of Complex Systems, Max Planck Society;

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Citation

Hahn, D., Dupont, M., Schmitt, M., Luitz, D. J., & Bukov, M. (2023). Quantum Many-Body Jarzynski Equality and Dissipative Noise on a Digital Quantum Computer. Physical Review X, 13(4): 041023. doi:10.1103/PhysRevX.13.041023.


Cite as: https://hdl.handle.net/21.11116/0000-000F-048B-0
Abstract
The quantum Jarzynski equality and the Crooks relation are fundamental laws connecting equilibrium processes with nonequilibrium fluctuations. They are promising tools to benchmark quantum devices and measure free energy differences. While they are well established theoretically and also experimental realizations for few-body systems already exist, their experimental validity in the quantum many-body regime has not been observed so far. Here, we present results for nonequilibrium protocols in systems with up to 16 interacting degrees of freedom obtained on trapped ion and superconducting qubit quantum computers, which test the quantum Jarzynski equality and the Crooks relation in the many-body regime. To achieve this, we overcome present-day limitations in the preparation of thermal ensembles and in the measurement of work distributions on noisy intermediate-scale quantum devices. We discuss the accuracy to which the Jarzynski equality holds on different quantum computing platforms subject to platformspecific errors. The analysis reveals the validity of Jarzynski's equality in a regime with energy dissipation, compensated for by a fast unitary drive. This provides new insights for analyzing errors in many-body quantum simulators.