Many-Body Self-Localization in a Translation-Invariant Hamiltonian

ORAL

Abstract

We study the statistical and dynamical aspects of a translation-invariant Hamiltonian, without quench disorder, as an example of the manifestation of the phenomenon of many-body localization. This is characterized by the breakdown of thermalization and by information preservation of initial preparations at long times. To realize this, we use quasi-periodic long-range interactions, which are now achievable in high-finesse cavity experiments, to find evidence suggestive of a divergent time-scale in which charge inhomogeneities in the initial state survive asymptotically. This is reminiscent of a glassy behavior, which appears in the ground-state of this system, being also present at infinite
temperatures. Unlike in standard studies of many-body localization, what triggers the breakdown of ergodicity in our model is the magnitude of the interactions and not a disorder amplitude.

*RM is financially supported by the National Natural Science Foundation of China (NSFC) (Grant Nos. U1530401, 11674021
and 11650110441). ZC is supported by the National Key Research and Development Program of China (grant No. 2016YFA0302001), the National Natural Science Foundation of China under Gran

Presenters

  • Rubem Mondaini

    • Beijing Computational Science Res Ctr
    • Beijing Computational Science Research Centre

Authors

  • Rubem Mondaini

    • Beijing Computational Science Res Ctr
    • Beijing Computational Science Research Centre
  • Zi Cai

    • Department of Physics and Astronomy, Shanghai Jiao Tong University
    • Shanghai Jiao Tong Univ