Constraint-Induced Delocalization

Abstract
We study the impact of quenched disorder on the dynamics of locally constrained quantum spin chains, that describe 1D arrays of Rydberg atoms in both the frozen (Ising-type) and dressed (XY-type) regime. Performing large-scale numerical experiments, we observe no trace of many-body localization even at large disorder. Analyzing the role of quenched disorder terms in constrained systems we show that they act in two, distinct and competing ways: as an on-site disorder term for the basic excitations of the system, and as an interaction between excitations. The two contributions are of the same order, and as they compete (one towards localization, the other against it), one does never enter a truly strong disorder, weak interaction limit, where many-body localization occurs. Such a mechanism is further clarified in the case of XY-type constrained models: there, a term which would represent a bona fide local quenched disorder term acting on the excitations of the clean model must be written as a series of nonlocal terms in the unconstrained variables. Our observations provide a simple picture to interpret the role of quenched disorder that could be immediately extended to other constrained models or quenched gauge theories.
Funding Information
  • European Research Council (758329)
  • Ministero dell’Istruzione, dell’Università e della Ricerca
  • Horizon 2020 Framework Programme (817482)
  • Narodowe Centrum Nauki (OPUS18 2019/35/B/ST2/00034, 2017/25/Z/ST2/03029)
  • Fundacja na rzecz Nauki Polskiej
  • QTFLAG
  • MEPH
  • TQT