Measurement-Protected Order in Monitored Quantum Circuits with Continuous Symmetry

ORAL

Abstract

Monitored quantum circuits, composed of local unitary operators and projective measurements, have emerged as a rich setting for studying non-equilibrium quantum dynamics. In these systems, measurements can protect various monitored steady state phases with area-law entanglement, including phases which can host measurement-protected Ising spin-glass order. To begin exploring whether this measurement-protected order is a generic phenomenon or is reliant on the discrete Ising symmetry, we introduce a circuit model with continuous symmetry where unitary feedback is used to generate local order. In one dimension, we find that long-range order arises in the steady state of our model but that this order is fragile to symmetry-respecting perturbations. Additionally, we find that the continuous symmetry leads to diffusive dynamics that are otherwise not generally present.

*This material is based upon work supported by the National Science Foundation Graduate Research Fellowship Program under Grant No. 2139319 (J.H.), by the Simons Collaboration on Ultra-Quantum Matter, which is a grant from the Simons Foundation (651457, M.P.A.F. and J.H.), and by the Q-FARM Bloch Fellowship at Stanford (Y.L.). This work is supported in part by the National Science Foundation under Grant No. NSF PHY-1748958. Use was made of computational facilities purchased with funds from the National Science Foundation (CNS-1725797) and administered by the Center for Scientific Computing (CSC). The CSC is supported by the California NanoSystems Institute and the Materials Research Science and Engineering Center (MRSEC; NSF DMR 1720256) at UC Santa Barbara.

Presenters

  • Jacob Hauser

    • University of California, Santa Barbara

Authors

  • Jacob Hauser

    • University of California, Santa Barbara
  • Matthew A Fisher

    • University of California, Santa Barbara
  • Yaodong Li

    • Stanford University