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Stability and instability towards delocalization in many-body localization systems

Wojciech De RoeckFrançois Huveneers

Abstract

Many-body localization plays an increasing role in condensed matter theory, both because it challenges the fundaments of statistical physics, and because it allows us to engineer several new, exotic, stable phases of matter. In this paper, the authors address the issue of the stability of a many-body localized material in contact with an ergodic grain, i.e., an imperfect bath made of a few interacting degrees of freedom. Thanks to detailed microscopic analysis and numerics, they conclude that such an ergodic grain eventually destabilizes the localized phase in the following cases: if the spatial dimension is higher than one, or if the spatial dimension is one but the localization length of the localized material is larger than a fixed threshold value. In realistic materials, these ergodic grains are always present as Griffiths regions where the disorder is anomalously small, and hence, the authors conclude that the localized phase in such materials is unstable, strictly speaking. Transport and thermalization are however exponentially suppressed in the distance between ergodic grains.

Quantum many-body systemsModel Reduction and Neural NetworksAdvanced Thermodynamics and Statistical MechanicsErgodic theoryThermalisationInstabilityDegrees of freedom (physics and chemistry)Statistical physicsDelocalized electronDimension (graph theory)ImperfectPhysicsStability (learning theory)

Funding

  • Deutsche Forschungsgemeinschaft
  • Agence Nationale de la Recherche
  • Centre National de la Recherche Scientifique
Citations
387
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24.53
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References
50
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