Superconductivity of disordered Dirac fermions in graphene
arXiv:1407.4830 · doi:10.1103/PhysRevB.90.094516
Abstract
We numerically study the interplay between superconductivity and disorder on the graphene honeycomb lattice with on-site Hubbard attractive interactions U using a spatially inhomogeneous self-consistent Bogoliubov-de Gennes (BdG) approach. In the absence of disorder there are two phases at charge neutrality. Below a critical value Uc for attractive interactions there is a Dirac semimetal phase and above it there is a superconducting phase. We add scalar potential disorder to the system, while remaining at charge neutrality on average. Numerical solution of the BdG equations suggests that while in the strong attraction regime (U > Uc) disorder has the usual effect of suppressing superconductivity, in the weak attraction regime (U < Uc) weak disorder enhances superconductivity. In the weak attraction regime, disorder that is too strong eventually suppresses superconductivity, i.e., there is an optimal disorder strength that maximizes the critical temperature Tc. Our numerical results also suggest that in the weakly disordered regime, mesoscopic inhomogeneities enhance superconductivity significantly more than what is predicted by a spatially uniform mean-field theory a` la Abrikosov-Gorkov. In this regime, superconductivity consists of rare phase-coherent superconducting islands. We also study the enhancement of the superconducting proximity effect by disorder and mesoscopic inhomogeneities, and obtain typical spatial plots of the tunneling density of states and the superfluid susceptibility that can be directly compared to scanning tunneling miscroscopy (STM) experiments on proximity-induced superconductivity in graphene.
Updated references
References in corpus (10)
- Bipolar supercurrent in graphene
- Scanning tunneling spectroscopy of high-temperature superconductors
- Visualizing pair formation on the atomic scale in the high-Tc superconductor Bi2Sr2CaCu2O8+d
- Rare region effects dominate weakly disordered 3D Dirac points
- BCS-BEC crossover on the two-dimensional honeycomb lattice
- Theory of quantum metal to superconductor transitions in highly conducting systems
- Quantum superconducting criticality in graphene and topological insulators
- Topological protection, disorder, and interactions: Survival at the surface of 3D topological superconductors
- Comment on "BCS superconductivity of Dirac fermions in graphene layers"
- d-wave to s-wave to normal metal transitions in disordered superconductors
Cited by in corpus (5)
- Conventional superconductivity in quasicrystals
- Disordered graphene Josephson junctions
- Disorder-dependent superconducting pairing symmetry in doped graphene
- Marginally localized edges of time-reversal symmetric topological superconductors
- An intermediate phase induced by dilution in a correlated Dirac Fermi system