Hollow Lattice Tensor Gauge Theories with Bosonic Matter

Fuente: arXiv
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Autori principali: Cruz, José M., Udagawa, Masafumi, Bicudo, Pedro, Ribeiro, Pedro, McClarty, Paul A.
Natura: Preprint
Pubblicazione: 2025
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author Cruz, José M.
Udagawa, Masafumi
Bicudo, Pedro
Ribeiro, Pedro
McClarty, Paul A.
author_facet Cruz, José M.
Udagawa, Masafumi
Bicudo, Pedro
Ribeiro, Pedro
McClarty, Paul A.
contents Higher rank gauge theories are generalizations of electromagnetism where, in addition to overall charge conservation, there is also conservation of higher rank multipoles such as the total dipole moment. In this work we study a four dimensional lattice tensor gauge theory coupled to bosonic matter which has second rank tensor electric and magnetic fields and charge conservation on individual planes. Starting from the Hamiltonian, we derive the lattice action for the gauge fields coupled to $q=1,2$ charged scalars. We use the action formulation to carry out Monte Carlo simulations to map the phase diagram as a function of the gauge ($β$) and matter ($κ$) couplings. We compute the nature of correlators at strong and weak coupling in the pure gauge theory and compare the results to numerical simulations. Simulations show that the naive weak coupling regime (small $κ$, large $β$) does not survive in the thermodynamic limit. Instead, the strong coupling confined phase, spans the whole phase diagram. It is a proliferation of instantons that destroys the weak coupling phase and we show, via a duality transformation, that the expected strong confinement is present in the analog of Wilson line correlators. For finite matter coupling at $q=1$ we find a single thermodynamic phase albeit with a first order phase transition terminating in a critical endpoint.For $q=2$ it is known that the the X-cube model with $\mathbb{Z}_2$ fractonic topological order is recovered deep in the Higgs regime. The simulations indeed reveal a distinct Higgs phase in this case.
format Preprint
id arxiv_https___arxiv_org_abs_2508_02326
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Hollow Lattice Tensor Gauge Theories with Bosonic Matter
Cruz, José M.
Udagawa, Masafumi
Bicudo, Pedro
Ribeiro, Pedro
McClarty, Paul A.
High Energy Physics - Lattice
Strongly Correlated Electrons
Higher rank gauge theories are generalizations of electromagnetism where, in addition to overall charge conservation, there is also conservation of higher rank multipoles such as the total dipole moment. In this work we study a four dimensional lattice tensor gauge theory coupled to bosonic matter which has second rank tensor electric and magnetic fields and charge conservation on individual planes. Starting from the Hamiltonian, we derive the lattice action for the gauge fields coupled to $q=1,2$ charged scalars. We use the action formulation to carry out Monte Carlo simulations to map the phase diagram as a function of the gauge ($β$) and matter ($κ$) couplings. We compute the nature of correlators at strong and weak coupling in the pure gauge theory and compare the results to numerical simulations. Simulations show that the naive weak coupling regime (small $κ$, large $β$) does not survive in the thermodynamic limit. Instead, the strong coupling confined phase, spans the whole phase diagram. It is a proliferation of instantons that destroys the weak coupling phase and we show, via a duality transformation, that the expected strong confinement is present in the analog of Wilson line correlators. For finite matter coupling at $q=1$ we find a single thermodynamic phase albeit with a first order phase transition terminating in a critical endpoint.For $q=2$ it is known that the the X-cube model with $\mathbb{Z}_2$ fractonic topological order is recovered deep in the Higgs regime. The simulations indeed reveal a distinct Higgs phase in this case.
title Hollow Lattice Tensor Gauge Theories with Bosonic Matter
topic High Energy Physics - Lattice
Strongly Correlated Electrons
url https://arxiv.org/abs/2508.02326