Minimal Model for Fast Scrambling

ORAL

Abstract

We study quantum information scrambling in spin models with both long-range all-to-all and short-range interactions. We argue that a simple global, spatially homogeneous interaction together with local chaotic dynamics is sufficient to give rise to fast scrambling, which describes the spread of quantum information over the entire system in a time that is logarithmic in the system size. This is illustrated in two tractable models: (1) a random circuit with Haar random local unitaries and a global interaction and (2) a classical model of globally coupled nonlinear oscillators. We use exact numerics to provide further evidence by studying the time evolution of an out-of-time-order correlator and entanglement entropy in spin chains of intermediate sizes. Our results pave the way towards experimental investigations of fast scrambling and aspects of quantum gravity with quantum simulators.

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Presenters

  • Ron Belyansky

    • University Of Maryland, College Park
    • University of Maryland
    • Joint Quantum Institute, University of Maryland
    • Joint Quantum Institute, University of Maryland, College Park
    • University of Maryland, College Park

Authors

  • Ron Belyansky

    • University Of Maryland, College Park
    • University of Maryland
    • Joint Quantum Institute, University of Maryland
    • Joint Quantum Institute, University of Maryland, College Park
    • University of Maryland, College Park
  • Przemyslaw Bienias

    • University Of Maryland, College Park
    • Joint Quantum Institute and Joint Center for Quantum Information and Computer Science, NIST/University of Maryland, College Park
    • University of Maryland, College Park
    • JQI/QuICS, NIST/University of Maryland, College Park
    • Physics, University of Maryland, College Park
  • Yaroslav Kharkov

    • University of Maryland, College Park
  • Alexey V Gorshkov

    • University of Maryland, College Park
    • National Institute of Standards and Technology
    • JQI-NIST
    • Joint Quantum Institute and Joint Center for Quantum Information and Computer Science, NIST/University of Maryland, College Park
    • Joint Quantum Institute, University of Maryland / NIST
    • NIST
  • Brian Swingle

    • Brandeis University
    • University of Maryland
    • University of Maryland, College Park