Characterization of collective excitations in weakly-coupled disordered superconductors
arXiv:2106.00033 · doi:10.1103/PhysRevB.105.094515
Abstract
Isolated islands in two-dimensional strongly-disordered and strongly-coupled superconductors become optically active inducing sub-gap collective excitations in the ac conductivity. Here, we investigate the fate of these excitations as a function of the disorder strength in the experimentally relevant case of weak electron-phonon coupling. An explicit calculation of the ac conductivity, that includes vertex corrections to restore gauge symmetry, reveals the existence of collective sub-gap excitations, related to phase fluctuations and therefore identified as the Goldstone modes, for intermediate to strong disorder. As disorder increases, the shape of the sub-gap excitation transits from peaked close to the spectral gap to a broader distribution reaching much smaller frequencies. Phase-coherence still holds in part of this disorder regime. The requirement to observe sub-gap excitations is not the existence of isolated islands acting as nano-antennas but rather the combination of a sufficiently inhomogeneous order parameter with a phase fluctuation correlation length smaller than the system size. Our results indicate that, by tuning disorder, the Goldstone mode may be observed experimentally in metallic superconductors based for instance on Al, Sn, Pb or Nb.
References in corpus (7)
- Phase fluctuations in a strongly disordered s-wave superconductor close to the metal-insulator transition
- The Higgs Mode in Disordered Superconductors Close to a Quantum Phase Transition
- Strongly disordered TiN and NbTiN s-wave superconductors probed by microwave electrodynamics
- Electrodynamics of granular aluminum from superconductor to insulator: observation of collective superconducting modes
- Frequency dependent superfluid stiffness in the pseudogap regime in strongly disordered NbN thin films
- Optical signatures of the superconducting Goldstone mode in granular aluminum: experiments and theory
- Superconductivity at the three-dimensional Anderson metal-insulator transition
Cited by in corpus (4)
- Tuning Superinductors by Quantum Coherence Effects for Enhancing Quantum Computing
- Collective excitations in competing phases in two and three dimensions
- Collective modes in superconductors including Coulomb repulsion
- Reducing the frequency of the Higgs mode in a helical superconductor coupled to an LC-circuit