Many-body Localization Transition in Rokhsar-Kivelson-type wave functions

ORAL

Abstract

We construct a family of many-body wave functions to study the many-body localization phase transition. The wave functions have a Rokhsar-Kivelson form, in which the weight for the configurations are chosen from the Gibbs weights of a classical spin glass model, known as the Random Energy Model, multiplied by a random sign structure to represent a highly excited state. These wave functions show a phase transition into an MBL phase. In addition, we see three regimes of entanglement scaling with subsystem size: scaling with entanglement corresponding to an infinite temperature thermal phase, constant scaling, and a sub-extensive scaling between these limits. Near the phase transition point, the fluctuations of the Renyi entropies are non-Gaussian. We find that Renyi entropies with different Renyi index transition into the MBL phase at different points and have different scaling behavior, suggesting a multifractal behavior.

*This work was supported in part by DMR-1064319 and DMR-1408713 (XC,GYC,EF) at the University of Illinois, PHY11-25915 at KITP (EF), DOE, SciDAC FG02-12ER46875 (BKC and XY), and the Brain Korea 21 PLUS Project of Korea Government (GYC).

Authors

  • Xiao Chen

    • University of illinois, Urbana Champaign
    • Univ of Illinois - Urbana
    • University of Illinois at Urbana-Champaign
  • Xiongjie Yu

    • University of Illinois at Urbana-Champaign
    • University of Illinois at Urbana Champaign
  • Gil Young Cho

    • Korea Advanced Institute of Science and Technology
    • Department of Physics, Korea Advanced Institute of Science and Technology
    • KAIST
  • Bryan Clark

    • University of Illinois at Urbana-Champaign
  • Eduardo Fradkin

    • University of Illinois at Urbana-Champaign
    • Univ of Illinois - Urbana
    • University of Illinois Urbana Champaign
    • University of Illinois Urbana-Champaign Dept. of Physics