Fractal superconductivity near localization threshold
M. V. Feigel'man, L. B. Ioffe, V. E. Kravtsov, E. Cuevas

TL;DR
This paper develops a semi-quantitative theory of superconductivity near the localization threshold in disordered conductors, emphasizing the role of fractal wavefunctions and identifying three distinct phases with unique properties.
Contribution
It introduces a novel theoretical framework combining analytical and numerical methods to describe fractal superconductivity near the Anderson transition, highlighting new phases and energy scales.
Findings
Identification of three phases: critical, pseudo-gapped, and insulating.
Enhanced transition temperature in the critical superconducting phase.
Presence of two energy scales: superconducting gap and pseudogap.
Abstract
We develop a semi-quantitative theory of electron pairing and resulting superconductivity in bulk "poor conductors" in which Fermi energy is located in the region of localized states not so far from the Anderson mobility edge . We review the existing theories and experimental data and argue that a large class of disordered films is described by this model. Our theoretical analysis is based on the analytical treatment of pairing correlations, described in the basis of the exact single-particle eigenstates of the 3D Anderson model, which we combine with numerical data on eigenfunction correlations. Fractal nature of critical wavefunction's correlations is shown to be crucial for the physics of these systems. We identify three distinct phases: 'critical' superconductive state formed at , superconducting state with a strong pseudogap, realized due to pairing of…
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