Chiral d-wave superconductivity in doped graphene
Abstract
A highly unconventional superconducting state with a spin-singlet -wave, or chiral d-wave, symmetry has recently been proposed to emerge from electron-electron interactions in doped graphene. Especially graphene doped to the van Hove singularity at 1/4 doping, where the density of states diverges, has been argued to likely be a chiral d-wave superconductor. In this review we summarize the currently mounting theoretical evidence for the existence of a chiral d-wave superconducting state in graphene, obtained with methods ranging from mean-field studies of effective Hamiltonians to angle-resolved renormalization group calculations. We further discuss multiple distinctive properties of the chiral d-wave superconducting state in graphene, as well as its stability in the presence of disorder. We also review means of enhancing the chiral d-wave state using proximity-induced superconductivity. The appearance of chiral d-wave superconductivity is intimately linked to the hexagonal crystal lattice and we also offer a brief overview of other materials which have also been proposed to be chiral d-wave superconductors.
Cite
@article{arxiv.1406.0101,
title = {Chiral d-wave superconductivity in doped graphene},
author = {Annica M. Black-Schaffer and Carsten Honerkamp},
journal= {arXiv preprint arXiv:1406.0101},
year = {2017}
}
Comments
51 pages, 8 figures. Invited topical review in J. Phys.:Condens. Matter