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The Holographic Disorder-Driven Superconductor-Metal Transition

High Energy Physics - Theory 2016-11-15 v2 Strongly Correlated Electrons Superconductivity

Abstract

We implement the effects of disorder on a holographic superconductor by introducing a random chemical potential on the boundary. We demonstrate explicitly that increasing disorder leads to the formation of islands where the superconducting order is enhanced and subsequently to the transition to a metal. We study the behavior of the superfluid density and of the conductivity as a function of the strength of disorder. We find explanations for various marked features in the conductivities in terms of hydrodynamic quasi-normal modes of the holographic superconductors. These identifications plus a particular disorder-dependent spectral weight shift in the conductivity point to a signature of the Higgs mode in the context of disordered holographic superconductors. We observe that the behavior of the order parameter close to the transition is not mean-field type as in the clean case, rather we find robust agreement with exp(ATTcν)\exp(- A\, |T-T_c|^{-\nu}), with ν=1.03±0.02\nu =1.03\pm 0.02 for this disorder-driven smeared transition.

Keywords

Cite

@article{arxiv.1507.02280,
  title  = {The Holographic Disorder-Driven Superconductor-Metal Transition},
  author = {Daniel Arean and Leopoldo A. Pando Zayas and Ignacio Salazar Landea and Antonello Scardicchio},
  journal= {arXiv preprint arXiv:1507.02280},
  year   = {2016}
}

Comments

7 pages, 8 figures. v2: minor improvements of the Higgs mode and smeared phase transition discussions. Typos corrected. Published version