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    Chaos, thermalization, and breakdown of quantum-classical correspondence in a collective many-body system

    Ángel L. Corps1,2,*, Sebastián Gómez3, Pavel Stránský1, Armando Relaño2,4, and Pavel Cejnar1

    • *Contact author: corps.angel.l@gmail.com

    Phys. Rev. B 113, 144315 – Published 22 April, 2026

    DOI: https://doi.org/10.1103/vsyl-21mr

    Abstract

    We investigate thermalization and the quantum-classical correspondence in the collective Bose-Hubbard model, focusing on the four-site case. Our analysis of the classical phase-space structure and its excited-state quantum phase transitions leads us to three dynamical regimes: symmetry-breaking low-energy states, an intermediate region where quantum and classical equilibrium states markedly disagree, and a high-energy regime with restored correspondence. The observed classical intermittency above the first excited-state quantum phase transition contrasts with quantum dynamics, which remains trapped in symmetry-breaking sectors despite the existence of a classically connected phase. This mismatch originates from the population of imbalance-carrying eigenstates and persists even for a relatively large number of particles. Our results reveal unexpectedly slow convergence to the classical limit, signaling robust finite-size effects in collective many-body dynamics.

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