Symmetry Breaking Dynamics in Quantum Many-Body Systems

Fuente: arXiv
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Main Authors: Yu, Hui, Li, Zi-Xiang, Zhang, Shi-Xin
Format: Preprint
Published: 2025
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author Yu, Hui
Li, Zi-Xiang
Zhang, Shi-Xin
author_facet Yu, Hui
Li, Zi-Xiang
Zhang, Shi-Xin
contents Entanglement asymmetry has emerged as a powerful tool for characterizing symmetry breaking in quantum many-body systems. In this Letter, we explore how symmetry is dynamically broken through the lens of entanglement asymmetry in two distinct scenarios: a non-symmetric random quantum circuit and a non-symmetric Hamiltonian quench, with a particular focus on U(1) symmetry. In the former case, the symmetry is initially broken and subsequently restored, whereas in the latter case, symmetry remains broken in the subsystem at late times, consistent with the principles of quantum thermalization. Notably, the growth of entanglement asymmetry exhibits unexpected overshooting behavior at early times in both contexts, contrasting with the behavior of charge variance. We also consider dynamics of non-symmetric initial states under the symmetry-breaking evolution. Due to the competition of symmetry-breaking in both the initial state and Hamiltonian, the early-time entanglement asymmetry can increase and decrease, while quantum Mpemba effects remain evident despite the weak symmetry-breaking in both settings.
format Preprint
id arxiv_https___arxiv_org_abs_2501_13459
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Symmetry Breaking Dynamics in Quantum Many-Body Systems
Yu, Hui
Li, Zi-Xiang
Zhang, Shi-Xin
Quantum Physics
Disordered Systems and Neural Networks
Statistical Mechanics
Entanglement asymmetry has emerged as a powerful tool for characterizing symmetry breaking in quantum many-body systems. In this Letter, we explore how symmetry is dynamically broken through the lens of entanglement asymmetry in two distinct scenarios: a non-symmetric random quantum circuit and a non-symmetric Hamiltonian quench, with a particular focus on U(1) symmetry. In the former case, the symmetry is initially broken and subsequently restored, whereas in the latter case, symmetry remains broken in the subsystem at late times, consistent with the principles of quantum thermalization. Notably, the growth of entanglement asymmetry exhibits unexpected overshooting behavior at early times in both contexts, contrasting with the behavior of charge variance. We also consider dynamics of non-symmetric initial states under the symmetry-breaking evolution. Due to the competition of symmetry-breaking in both the initial state and Hamiltonian, the early-time entanglement asymmetry can increase and decrease, while quantum Mpemba effects remain evident despite the weak symmetry-breaking in both settings.
title Symmetry Breaking Dynamics in Quantum Many-Body Systems
topic Quantum Physics
Disordered Systems and Neural Networks
Statistical Mechanics
url https://arxiv.org/abs/2501.13459