English

Realistic scheme for quantum simulation of $\mathbb{Z}_2$ lattice gauge theories with dynamical matter in $(2+1)$D

Quantum Gases 2023-06-07 v2 Strongly Correlated Electrons High Energy Physics - Lattice Quantum Physics

Abstract

Gauge fields coupled to dynamical matter are ubiquitous in many disciplines of physics, ranging from particle to condensed matter physics, but their implementation in large-scale quantum simulators remains challenging. Here we propose a realistic scheme for Rydberg atom array experiments in which a Z2\mathbb{Z}_2 gauge structure with dynamical charges emerges on experimentally relevant timescales from only local two-body interactions and one-body terms in two spatial dimensions. The scheme enables the experimental study of a variety of models, including (2+1)(2+1)D Z2\mathbb{Z}_2 lattice gauge theories coupled to different types of dynamical matter and quantum dimer models on the honeycomb lattice, for which we derive effective Hamiltonians. We discuss ground-state phase diagrams of the experimentally most relevant effective Z2\mathbb{Z}_2 lattice gauge theories with dynamical matter featuring various confined and deconfined, quantum spin liquid phases. Further, we present selected probes with immediate experimental relevance, including signatures of disorder-free localization and a thermal deconfinement transition of two charges.

Keywords

Cite

@article{arxiv.2205.08541,
  title  = {Realistic scheme for quantum simulation of $\mathbb{Z}_2$ lattice gauge theories with dynamical matter in $(2+1)$D},
  author = {Lukas Homeier and Annabelle Bohrdt and Simon Linsel and Eugene Demler and Jad C. Halimeh and Fabian Grusdt},
  journal= {arXiv preprint arXiv:2205.08541},
  year   = {2023}
}