Giant number-parity effect leading to spontaneous symmetry breaking in finite-size quantum spin models

Fuente: arXiv
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Main Authors: Caleca, Filippo, Bocini, Saverio, Mezzacapo, Fabio, Roscilde, Tommaso
Format: Preprint
Published: 2024
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author Caleca, Filippo
Bocini, Saverio
Mezzacapo, Fabio
Roscilde, Tommaso
author_facet Caleca, Filippo
Bocini, Saverio
Mezzacapo, Fabio
Roscilde, Tommaso
contents Spontaneous symmetry breaking (SSB) occurs when a many-body system governed by a symmetric Hamiltonian, and prepared in a symmetry-broken state by the application of a field coupling to its order parameter $O$, retains a finite $O$ value even after the field is switched off. SSB is generally thought to occur only in the thermodynamic limit $N\to \infty$ (for $N$ degrees of freedom). In this limit, the time to restore the symmetry once the field is turned off, either via thermal or quantum fluctuations, is expected to diverge. Here we show that SSB can also be observed in \emph{finite-size} quantum spin systems, provided that three conditions are met: 1) the ground state of the system has long-range correlations; 2) the Hamiltonian conserves the (spin) parity of the order parameter; and 3) $N$ is odd. Using a combination of analytical arguments and numerical results (based on time-dependent variational Monte Carlo and rotor+spin-wave theory), we show that SSB on finite-size systems can be achieved via a quasi-adiabatic preparation of the ground state -- which, in U(1)-symmetric systems, is shown to require a symmetry breaking field vanishing over time scales $τ\sim O(N)$. In these systems, the symmetry-broken state exhibits spin squeezing with Heisenberg scaling.
format Preprint
id arxiv_https___arxiv_org_abs_2412_15493
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Giant number-parity effect leading to spontaneous symmetry breaking in finite-size quantum spin models
Caleca, Filippo
Bocini, Saverio
Mezzacapo, Fabio
Roscilde, Tommaso
Strongly Correlated Electrons
Quantum Physics
Spontaneous symmetry breaking (SSB) occurs when a many-body system governed by a symmetric Hamiltonian, and prepared in a symmetry-broken state by the application of a field coupling to its order parameter $O$, retains a finite $O$ value even after the field is switched off. SSB is generally thought to occur only in the thermodynamic limit $N\to \infty$ (for $N$ degrees of freedom). In this limit, the time to restore the symmetry once the field is turned off, either via thermal or quantum fluctuations, is expected to diverge. Here we show that SSB can also be observed in \emph{finite-size} quantum spin systems, provided that three conditions are met: 1) the ground state of the system has long-range correlations; 2) the Hamiltonian conserves the (spin) parity of the order parameter; and 3) $N$ is odd. Using a combination of analytical arguments and numerical results (based on time-dependent variational Monte Carlo and rotor+spin-wave theory), we show that SSB on finite-size systems can be achieved via a quasi-adiabatic preparation of the ground state -- which, in U(1)-symmetric systems, is shown to require a symmetry breaking field vanishing over time scales $τ\sim O(N)$. In these systems, the symmetry-broken state exhibits spin squeezing with Heisenberg scaling.
title Giant number-parity effect leading to spontaneous symmetry breaking in finite-size quantum spin models
topic Strongly Correlated Electrons
Quantum Physics
url https://arxiv.org/abs/2412.15493