Enhancing disorder-free localization through dynamically emergent local symmetries
Jad C. Halimeh, Lukas Homeier, Hongzheng Zhao, Annabelle Bohrdt,, Fabian Grusdt, Philipp Hauke, Johannes Knolle

TL;DR
This paper demonstrates that in $ ext{Z}_2$ gauge theories, adding translation-invariant terms linear in a local pseudogenerator can enhance disorder-free localization by dynamically creating an emergent gauge symmetry, with potential experimental realization.
Contribution
It introduces a method to enhance disorder-free localization in $ ext{Z}_2$ gauge theories via dynamically emergent local symmetries using pseudogenerators, supported by analytical, numerical, and experimental proposals.
Findings
Enhanced disorder-free localization through pseudogenerator addition.
Emergence of a renormalized gauge theory with increased local symmetry.
Feasible experimental implementation in Rydberg atom setups.
Abstract
Disorder-free localization is a recently discovered phenomenon of nonergodicity that can emerge in quantum many-body systems hosting gauge symmetries when the initial state is prepared in a superposition of gauge superselection sectors. Thermalization is then prevented up to all accessible evolution times despite the model being nonintegrable and translation-invariant. In a recent work [Halimeh, Zhao, Hauke, and Knolle, arXiv:2111.02427], it has been shown that terms linear in the gauge-symmetry generator stabilize disorder-free localization in gauge theories against gauge errors that couple different superselection sectors. Here, we show in the case of gauge theories that disorder-free localization can not only be stabilized, but also \textit{enhanced} by the addition of translation-invariant terms linear in a local \textit{pseudogenerator}…
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Taxonomy
TopicsQuantum, superfluid, helium dynamics · Quantum many-body systems · Cold Atom Physics and Bose-Einstein Condensates
