Confinement of Z<sub>2</sub> lattice gauge theories in a mixed-dimensional XXZ model

ORAL

Abstract

The study of confinement in lattice gauge theories (LGTs) is one of the fundamental problems in physics, which is still poorly understood when gauge fields are coupled to dynamical matter. In this talk we explore the physics of confinement in a mixed-dimensional XXZ model, where XXZ chains are coupled by an Ising interaction. We map this system to coupled arrays of Z2 LGTs, where Z2 charges correspond to spinons in the spin picture. Using numerical simulations we uncover stripes in the ground state, which can be melted into a disordered deconfined state by increasing the hopping amplitude of the Z2 charges. In addition, finite temperature calculations reveal an intricate gas of confined mesons, which emerges as a result of stripes being destroyed by thermal fluctuations and the development of long-range AFM correlations in the spin picture. In the Z2 LGT picture this results in a finite electric field that confines parton pairs into bound mesons. Our study is motivated by the quantum simulation of a Bose-Hubbard Hamiltonian with dipolar atoms, which can be effectively mapped to the coupled arrays of Z2 LGT and the mixed-dimensional XXZ model in the hardcore limit when hopping is limited to one dimension. By quantum simulation of the full Bose-Hubbard model we experimentally realize a transition between stripes and deconfined state, and demonstrate that such platform can be used to study confinement of a Z2 lattice gauge theory.

*DFG (German Research Foundation) under Germany's Excellence Strategy – EXC-2111 – 390814868 and via Research Unit FOR 2414 under project number 277974659, funding from the European Research Council (ERC) under the European Union's Horizon 2020 research and innovation programm (Grant Agreement no 948141) — ERC Starting Grant SimUcQuam.

Presenters

  • Matjaz Kebric

    • JILA

Authors

  • Matjaz Kebric

    • JILA
  • Lin Su

    • Harvard University
  • Michal Szurek

    • Harvard University
  • Alexander M Douglas

    • Harvard University
  • Ulrich Schollwöck

    • LMU
    • LMU Munich and Munich Center for Quantum Science and Technology (MCQST)
    • LMU Munich
    • LMU Munich; MCQST
  • Ognjen Markovic

    • Harvard University
    • QuEra Computing Inc.
  • Markus Greiner

    • Harvard University
  • Annabelle Bohrdt

    • University of Regensburg
  • Fabian Grusdt

    • Ludwig-Maximilians-Universitaet (LMU-Munich)
    • LMU Munich and Munich Center for Quantum Science and Technology (MCQST)
    • LMU Munich; MCQST
    • LMU Munich