Topological Phases in a Dipolar Bose-Hubbard Quantum Simulator Part II: Mixed State Order and the Haldane Insulator

ORAL

Abstract

Using an erbium quantum gas microscope, we further experimentally investigate two intriguing aspects of the crystalline symmetry-protected topological (CSPT) phases we observe. First, we demonstrate that these phases remain robust under disorder averaging, even though individual disorder realizations break the protecting crystalline symmetry. This establishes the CSPT phase as an example of mixed-state quantum order. To verify this experimentally, we introduce a controlled, programmable random chemical potential disorder, which disrupts order parameters at the individual realization level. However, averaging over multiple disorder realizations restores the distinct phase structure, confirming the topological phase’s robustness. Finally, we establish a connection between the Haldane insulator, a well-known symmetry-protected topological (SPT) phase, and the CSPT phases. In particular, we show that the CSPT transition interpolates to a transition between a Mott insulator to Haldane insulator after removing the alternating chemical potential. We observe order parameters consistent with this transition, providing the first experimental evidence of a tunable, interacting SPT phase in an analog setting.

*U.S. Department of Energy Quantum Systems Accelerator DE-AC02-05CH11231, National Science Foundation Center for Ultracold Atoms PHY-1734011, Army Research Office Defense University Research Instrumentation Program W911NF2010104, Office of Naval Research Vannevar Bush Faculty Fellowship N00014-18-1-2863, Gordon and Betty Moore Foundation Grant GBMF11521, and Defense Advanced Research Projects Agency Optimization with Noisy Intermediate-Scale Quantum devices W911NF-20-1-0021. R.S. acknowledges support from the Department of Energy Computational Science Graduate Fellowship (CSGF) under Award Number DE-SC0022158. A.D. acknowledges support from the NSF Graduate Research Fellowship Program (grant DGE2140743).

Presenters

  • Rahul Sahay

    • Harvard University

Authors

  • Rahul Sahay

    • Harvard University
  • Lin Su

    • Harvard University
  • Michal Szurek

    • Harvard University
  • Alexander M Douglas

    • Harvard University
  • Ognjen Markovic

    • Harvard University
    • QuEra Computing Inc.
  • Ceren B Dag

    • Harvard University
  • Ruben Verresen

    • University of Chicago
  • Markus Greiner

    • Harvard University