APS Logo

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.

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