English

Many-body Localization Transition: Schmidt Gap, Entanglement Length & Scaling

Disordered Systems and Neural Networks 2018-06-04 v2 Quantum Physics

Abstract

Many-body localization has become an important phenomenon for illuminating a potential rift between non-equilibrium quantum systems and statistical mechanics. However, the nature of the transition between ergodic and localized phases in models displaying many-body localization is not yet well understood. Assuming that this is a continuous transition, analytic results show that the length scale should diverge with a critical exponent ν2\nu \ge 2 in one dimensional systems. Interestingly, this is in stark contrast with all exact numerical studies which find ν1\nu \sim 1. We introduce the Schmidt gap, new in this context, which scales near the transition with a exponent ν>2\nu > 2 compatible with the analytical bound. We attribute this to an insensitivity to certain finite size fluctuations, which remain significant in other quantities at the sizes accessible to exact numerical methods. Additionally, we find that a physical manifestation of the diverging length scale is apparent in the entanglement length computed using the logarithmic negativity between disjoint blocks.

Keywords

Cite

@article{arxiv.1704.00738,
  title  = {Many-body Localization Transition: Schmidt Gap, Entanglement Length & Scaling},
  author = {Johnnie Gray and Sougato Bose and Abolfazl Bayat},
  journal= {arXiv preprint arXiv:1704.00738},
  year   = {2018}
}

Comments

8 pages, 7 figures

R2 v1 2026-06-22T19:06:23.269Z