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Entanglement asymmetry in periodically driven quantum systems

Quantum Physics 2025-07-09 v3 Strongly Correlated Electrons High Energy Physics - Theory

Abstract

We study the dynamics of entanglement asymmetry in periodically driven quantum systems. Using a periodically driven XY chain as a model for a driven integrable quantum system, we provide semi-analytic results for the behavior of the dynamics of the entanglement asymmetry, ΔS\Delta S, as a function of the drive frequency. Our analysis identifies special drive frequencies at which the driven XY chain exhibits dynamic symmetry restoration and displays quantum Mpemba effect over a long timescale; we identify an emergent approximate symmetry in its Floquet Hamiltonian which plays a crucial role for realization of both these phenomena. We follow these results by numerical computation of ΔS\Delta S for the non-integrable driven Rydberg atom chain and obtain similar emergent-symmetry-induced symmetry restoration and quantum Mpemba effect in the prethermal regime for such a system. Finally, we provide an exact analytic computation of the entanglement asymmetry for a periodically driven conformal field theory (CFT) on a strip. Such a driven CFT, depending on the drive amplitude and frequency, exhibits two distinct phases, heating and non-heating, that are separated by a critical line. Our results show that for mm cycles of a periodic drive with time period TT, ΔSlnmT\Delta S \sim \ln mT [ln(lnmT)\ln (\ln mT)] in the heating phase [on the critical line] for a generic CFT; in contrast, in the non-heating phase, ΔS\Delta S displays small amplitude oscillations around it's initial value as a function of mTmT. We provide a phase diagram for the behavior of ΔS\Delta S for such driven CFTs as a function of the drive frequency and amplitude.

Keywords

Cite

@article{arxiv.2412.03654,
  title  = {Entanglement asymmetry in periodically driven quantum systems},
  author = {Tista Banerjee and Suchetan Das and K. Sengupta},
  journal= {arXiv preprint arXiv:2412.03654},
  year   = {2025}
}

Comments

v3; Accpeted version in Scipost Phys

R2 v1 2026-06-28T20:23:27.243Z