Disorder-dependent superconducting pairing symmetry in doped graphene
Kaiyi Guo, Yue Zhang, Ying Liang, Tianxing Ma
DOI 10.1103/PhysRevB.110.085103 · Physical Review B
Active bibliographic source — not scientific approval
Bibliographic access preserves source history; it does not approve extracted materials or validate reported claims. Review warnings on each occurrence separately.
Abstract
Disorder and doping have profound effects on the intrinsic physical mechanisms of superconductivity. In this paper, we employed the determinant quantum Monte Carlo method to investigate the symmetry-allowed superconducting orders on the two-dimensional honeycomb lattice within the Hubbard model, using doped graphene as the carrier, focusing their response to bond disorder. Specifically, we calculated the pairing susceptibility and effective pairing interactions for the d+id wave and extended s-wave pairings for different electron densities and disorder strengths. Our calculations show that at high electron densities, increased disorder strength may lead to a transform from d+id wave dominance to extended s wave dominance. However, at lower electron densities, neither of the two superconducting pairings appears under larger disorder strength. Our calculations may contribute to a further understanding of the superconducting behavior in doped materials affected by disorder.
Similar papers
Superconducting pairing symmetries of the Hubbard model on the honeycomb lattice with inhomogeneous hopping strength
similarity 0.93Tao Ying & Shuhui Yang
Source status unknown — claims are unverified
Electric field-induced chiral d+id superconducting state in AA-stacked bilayer graphene: A quantum Monte Carlo study
similarity 0.92Shi-Chao Fang et al. · 2019 · arXiv:1907.10236
Source status unknown — claims are unverified
Pairing in graphene: A quantum Monte Carlo study
similarity 0.91Tianxing Ma et al. · 2011 · arXiv:1109.6458
Source status unknown — claims are unverified
Competition between d-wave and d+is-wave superconductivity in the Hubbard model on a checkerboard lattice
similarity 0.91Yue Pan et al.
Source status unknown — claims are unverified
Excitonic and superconducting orders from repulsive interaction on the doped honeycomb bilayer
similarity 0.91James M. Murray & Oskar Vafek
Source status unknown — claims are unverified
Effect of disorder on charge-density wave and superconducting order in the half-filled attractive Hubbard model
similarity 0.90C. Huscroft & R. T. Scalettar
Source status unknown — claims are unverified