Probing many-body localization crossover in quasiperiodic Floquet circuits on a quantum processor

Fuente: arXiv
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Autori principali: Nagao, Kazuma, Shirakawa, Tomonori, Sun, Rongyang, Prelovšek, Peter, Yunoki, Seiji
Natura: Preprint
Pubblicazione: 2026
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author Nagao, Kazuma
Shirakawa, Tomonori
Sun, Rongyang
Prelovšek, Peter
Yunoki, Seiji
author_facet Nagao, Kazuma
Shirakawa, Tomonori
Sun, Rongyang
Prelovšek, Peter
Yunoki, Seiji
contents Many-body localization (MBL) provides a mechanism by which interacting quantum systems evade thermalization, leading to persistent memory of initial conditions and slow entanglement growth. Probing these dynamical signatures in large systems and at long evolution times remains challenging for both classical simulations and current quantum devices. Here we experimentally investigate the ergodic-MBL crossover in quasiperiodic Floquet Ising systems using up to 144 qubits on an IBM Quantum processor. By implementing deep Floquet circuits reaching up to 5000 cycles, we access long-time many-body dynamics beyond the regime explored in previous quantum computing experiments. Measurements of autocorrelation functions reveal a smooth crossover from rapid thermalization at weak quasiperiodic potential strength to persistent correlations in the strong-disorder regime. Notably, in addition to the one-dimensional system, we also observe clear signatures consistent with localization behavior in the two-dimensional system. Furthermore, the quantum Fisher information exhibits logarithmic growth over thousands of Floquet cycles, providing evidence for slow entanglement spreading characteristic of the MBL regime. These results demonstrate that programmable quantum processors can serve as experimental platforms for probing nonergodic quantum many-body dynamics and exploring localization phenomena in regimes beyond the reach of classical simulations.
format Preprint
id arxiv_https___arxiv_org_abs_2603_12675
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Probing many-body localization crossover in quasiperiodic Floquet circuits on a quantum processor
Nagao, Kazuma
Shirakawa, Tomonori
Sun, Rongyang
Prelovšek, Peter
Yunoki, Seiji
Quantum Physics
Disordered Systems and Neural Networks
Quantum Gases
Statistical Mechanics
Strongly Correlated Electrons
Many-body localization (MBL) provides a mechanism by which interacting quantum systems evade thermalization, leading to persistent memory of initial conditions and slow entanglement growth. Probing these dynamical signatures in large systems and at long evolution times remains challenging for both classical simulations and current quantum devices. Here we experimentally investigate the ergodic-MBL crossover in quasiperiodic Floquet Ising systems using up to 144 qubits on an IBM Quantum processor. By implementing deep Floquet circuits reaching up to 5000 cycles, we access long-time many-body dynamics beyond the regime explored in previous quantum computing experiments. Measurements of autocorrelation functions reveal a smooth crossover from rapid thermalization at weak quasiperiodic potential strength to persistent correlations in the strong-disorder regime. Notably, in addition to the one-dimensional system, we also observe clear signatures consistent with localization behavior in the two-dimensional system. Furthermore, the quantum Fisher information exhibits logarithmic growth over thousands of Floquet cycles, providing evidence for slow entanglement spreading characteristic of the MBL regime. These results demonstrate that programmable quantum processors can serve as experimental platforms for probing nonergodic quantum many-body dynamics and exploring localization phenomena in regimes beyond the reach of classical simulations.
title Probing many-body localization crossover in quasiperiodic Floquet circuits on a quantum processor
topic Quantum Physics
Disordered Systems and Neural Networks
Quantum Gases
Statistical Mechanics
Strongly Correlated Electrons
url https://arxiv.org/abs/2603.12675