Chiral triplet superconductivity on the graphene lattice
Abstract
Motivated by the possibility of superconductivity in doped graphene sheets, we investigate superconducting order in the extended Hubbard model on the two-dimensional graphene lattice using the variational cluster approximation (VCA) and the cellular dynamical mean-field theory (CDMFT) with an exact diagonalization solver at zero temperature. The nearest-neighbor interaction is treated using a mean-field decoupling between clusters. We compare different pairing symmetries, singlet and triplet, based on short-range pairing. VCA simulations show that the real (nonchiral), triplet -wave symmetry is favored for small , small on-site interaction or large doping, whereas the chiral combination is favored for larger values of , stronger on-site interaction or smaller doping. CDMFT simulations confirm the stability of the solution, even at half-filling. Singlet superconductivity (extended -wave or -wave) is either absent or sub-dominant.
Keywords
Cite
@article{arxiv.1505.07890,
title = {Chiral triplet superconductivity on the graphene lattice},
author = {J. P. L. Faye and P. Sahebsara and D. Sénéchal},
journal= {arXiv preprint arXiv:1505.07890},
year = {2019}
}
Comments
10 pages, 8 figures