Confinement in 1+1D $\mathbb{Z}_2$ Lattice Gauge Theories at Finite Temperature

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Autori principali: Kebrič, Matjaž, Halimeh, Jad C., Schollwöck, Ulrich, Grusdt, Fabian
Natura: Preprint
Pubblicazione: 2023
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author Kebrič, Matjaž
Halimeh, Jad C.
Schollwöck, Ulrich
Grusdt, Fabian
author_facet Kebrič, Matjaž
Halimeh, Jad C.
Schollwöck, Ulrich
Grusdt, Fabian
contents Confinement is a paradigmatic phenomenon of gauge theories, and its understanding lies at the forefront of high-energy physics. Here, we study confinement in a simple one-dimensional $\mathbb{Z}_2$ lattice gauge theory at finite temperature and filling, which is within the reach of current cold-atom and superconducting-qubit platforms. By employing matrix product states (MPS) calculations, we investigate the decay of the finite-temperature Green's function and uncover a smooth crossover between the confined and deconfined regimes. Furthermore, using the Friedel oscillations and string length distributions obtained from snapshots sampled from MPS, both of which are experimentally readily available, we verify that confined mesons remain well-defined at arbitrary finite temperature. This phenomenology is further supported by probing quench dynamics of mesons with exact diagonalization. Our results shed new light on confinement at finite temperature from an experimentally relevant standpoint.
format Preprint
id arxiv_https___arxiv_org_abs_2308_08592
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Confinement in 1+1D $\mathbb{Z}_2$ Lattice Gauge Theories at Finite Temperature
Kebrič, Matjaž
Halimeh, Jad C.
Schollwöck, Ulrich
Grusdt, Fabian
Quantum Gases
Strongly Correlated Electrons
High Energy Physics - Lattice
Quantum Physics
Confinement is a paradigmatic phenomenon of gauge theories, and its understanding lies at the forefront of high-energy physics. Here, we study confinement in a simple one-dimensional $\mathbb{Z}_2$ lattice gauge theory at finite temperature and filling, which is within the reach of current cold-atom and superconducting-qubit platforms. By employing matrix product states (MPS) calculations, we investigate the decay of the finite-temperature Green's function and uncover a smooth crossover between the confined and deconfined regimes. Furthermore, using the Friedel oscillations and string length distributions obtained from snapshots sampled from MPS, both of which are experimentally readily available, we verify that confined mesons remain well-defined at arbitrary finite temperature. This phenomenology is further supported by probing quench dynamics of mesons with exact diagonalization. Our results shed new light on confinement at finite temperature from an experimentally relevant standpoint.
title Confinement in 1+1D $\mathbb{Z}_2$ Lattice Gauge Theories at Finite Temperature
topic Quantum Gases
Strongly Correlated Electrons
High Energy Physics - Lattice
Quantum Physics
url https://arxiv.org/abs/2308.08592