Spectral signatures of many-body localization of interacting photons

ORAL

Abstract

Statistical mechanics is founded on the assumption that a system can reach thermal equilibrium, regardless of the starting state. Interactions between particles facilitate thermalization, but, can interacting systems always equilibrate regardless of parameter values? The energy spectrum of a system can answer this question and reveal the nature of the underlying phases. However, most experimental techniques only indirectly probe the many-body energy spectrum. Using a chain of nine superconducting qubits, we implement a novel technique for directly resolving the energy levels of interacting photons. We benchmark this method by capturing the intricate energy spectrum predicted for 2D electrons in a magnetic field, the Hofstadter butterfly. By increasing disorder, the spatial extent of energy eigenstates at the edge of the energy band shrink, suggesting the formation of a mobility edge. At strong disorder, the energy levels cease to repel one another and their statistics approaches a Poisson distribution -the hallmark of transition from the thermal to the many-body localized phase. Our work introduces a new many-body spectroscopy technique to study quantum phases of matter.

Presenters

  • Pedram Roushan

    • Google Inc - Santa Barbara

Authors

  • Pedram Roushan

    • Google Inc - Santa Barbara
  • Charles Neill

    • Physics, Univ of California - Santa Barbara
    • UC Santa Barbara
    • Univ of California - Santa Barbara
    • UCSB
    • Physics, University of California, Santa Barbara
  • Jirawat Tangpanitanon

    • Centre for Quantum Technologies
    • CQT
  • Victor Bastidas

    • Centre for Quantum Technologies
    • CQT
  • Anthony Megrant

    • Google Inc - Santa Barbara
  • Yu Chen

    • Google Inc - Santa Barbara
    • Google Inc.
  • Rami Barends

    • Google Inc - Santa Barbara
  • Brooks Campbell

    • Physics, Univ of California - Santa Barbara
    • UCSB
  • Zijun Chen

    • Physics, Univ of California - Santa Barbara
    • UC Santa Barbara
    • Univ of California - Santa Barbara
    • UCSB
    • Google
  • Ben Chiaro

    • Physics, Univ of California - Santa Barbara
    • UC Santa Barbara
    • Univ of California - Santa Barbara
    • UCSB
    • University of California - Santa Barbara
    • Physics, University of California, Santa Barbara
  • Andrew Dunsworth

    • Physics, Univ of California - Santa Barbara
    • UC Santa Barbara
    • Univ of California - Santa Barbara
    • UCSB
    • University of California - Santa Barbara
    • Physics, University of California, Santa Barbara
  • Evan Jeffrey

    • Google Inc - Santa Barbara
  • Julian Kelly

    • Google Inc - Santa Barbara
    • Google
  • Erik Lucero

    • Google Inc - Santa Barbara
  • Josh Mutus

    • Google Inc - Santa Barbara
  • Matthew Neeley

    • Google Inc - Santa Barbara
  • Chris Quintana

    • Google Inc - Santa Barbara
    • Google Inc.
  • Daniel Sank

    • Google Inc - Santa Barbara
  • Amit Vainsencher

    • Google Inc - Santa Barbara
  • James Wenner

    • Physics, Univ of California - Santa Barbara
    • Univ of California - Santa Barbara
    • UCSB
    • University of California - Santa Barbara
    • Physics, University of California, Santa Barbara
  • Theodore White

    • Google Inc - Santa Barbara
  • Dimitris Angelakis

    • Centre for Quantum Technologies
    • CQT
  • John Martinis

    • Google
    • Google Inc - Santa Barbara
    • Google Inc.
    • UC Santa Barbara and Google