4.5 Article

Multifractally-enhanced superconductivity in thin films

Journal

ANNALS OF PHYSICS
Volume 435, Issue -, Pages -

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.aop.2021.168499

Keywords

Anderson localization; Multifractality; Superconductivity

Funding

  1. Russian Foundation for Basic Research [20-52-12013]
  2. Deutsche Forschungsgemeinschaft, Germany [EV 30/14-1]
  3. Basic Research Program of HSE

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This article discusses the formation mechanism of multifractal superconducting state and presents a theory of multifractal superconducting state in thin films. By deriving a modified Usadel equation, the study explores the impact of multifractal-enhanced superconductivity on low-energy physics and reveals strong mesoscopic fluctuations near the spectral gap in the superconducting state.
The multifractal superconducting state originates from the interplay of Anderson localization and interaction effects. In this article we overview the recent theory of the superconductivity enhancement by multifractality and extend it to describe the spectral properties of superconductors on the scales of the order of the superconducting gap. Specifically, using the approach based on renormalization group within the nonlinear sigma model, we develop the theory of a multifractal superconducting state in thin films. We derive a modified Usadel equation that incorporates the interplay of disorder and interactions at energy scales larger than the spectral gap and study the effect of such an interplay on the low-energy physics. We determine the spectral gap at zero temperature which occurs to be proportional to the multifractally enhanced superconducting transition temperature. The modified Usadel equation results in the disorder-averaged density of states that, near the spectral gap, resembles the one obtained in the model of a spatially random superconducting order parameter. We reveal strong mesoscopic fluctuations of the local density of states in the superconducting state. Such strong mesoscopic fluctuations imply that the interval of energies in which the superconducting gap establishes is parametrically large in systems with multifractally-enhanced superconductivity. (c) 2021 Elsevier Inc. All rights reserved.

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