English

Strain induced superconducting pair-density-wave states in graphene

Superconductivity 2018-11-14 v1

Abstract

Graphene is known to be non-superconducting. However, surprising superconductivity is recently discovered in a flat-band in a twisted bi-layer graphene. Here we show that superconductivity can be more easily realized in topological flat-bands induced by strain in graphene through periodic ripples. Specifically, it is shown that by including correlation effects, the chiral d-wave superconductivity can be stabilized under strain even for slightly doped graphene. The chiral d-wave superconductivity generally coexists with charge density waves (CDW) and pair density waves (PDW) of the same period. Remarkably, a pure PDW state with doubled period that coexists with the CDW state is found to emerge at a finite temperature region under reasonable strain strength. The emergent PDW state is shown to be superconducting with non-vanishing superfluid density, and it realizes the long searched superconducting states with non-vanishing center of mass momentum for Cooper pairs.

Keywords

Cite

@article{arxiv.1810.07515,
  title  = {Strain induced superconducting pair-density-wave states in graphene},
  author = {Feng Xu and Po-Hao Chou and Chung-Hou Chung and Ting-Kuo Lee and Chung-Yu Mou},
  journal= {arXiv preprint arXiv:1810.07515},
  year   = {2018}
}

Comments

7 pages, 5 figures, to appear in Phys. Rev. B