Detailed structure of a localization phase diagram controlled by the interplay of driving and disorder

ORAL

Abstract

We report experimental study of the interplay between spatially quasiperiodic disorder and time-periodic driving using a 1D quasiperiodic cold-atom chain. We measure transport throughout a phase diagram with axes of drive amplitude and quasidisorder strength, and observe lobes of metallic phases bounded by quantum phase transitions arising from the competition of these two localizing mechanisms. While these observations are broadly consistent with the predictions of a high-drive-frequency theoretical model, we also observe clear quantitative departures from this model in the measured phase diagram, including drive-frequency dependent changes in localization behavior. We demonstrate, with the support of numerics, that these exotic measured features arise from higher-order terms beyond the high-frequency-drive approximation.

*We acknowledge research support from the Air Force Office of Scientific Research (FA9550-20-1-0240) and the NSF QLCI program (OMA-2016245). A.R.D. acknowl-edges support from the UC Santa Barbara NSF Quantum Foundry funded via the Q-AMASE-i program under Grant DMR1906325. The optical lattices used herein were developed in work supported by the U.S. Department of Energy, Office of Science, National Quantum Information Science Research Centers, Quantum Science Center.

Publication: arXiv:2406.00214

Presenters

  • Anna R Dardia

    • University of California, Santa Barbara

Authors

  • Anna R Dardia

    • University of California, Santa Barbara
  • Peter E Dotti

    • University of California, Santa Barbara
  • Yifei Bai

    • University of California, Santa Barbara
  • Toshihiko Shimasaki

    • University of California, Santa Barbara
  • David M Weld

    • University of California, Santa Barbara