Unconventional superconductivity in systems with annular Fermi surfaces: Application to rhombohedral trilayer graphene

ORAL

Abstract

We show that in a two-dimensional electron gas with an annular Fermi surface, long-range Coulomb interactions can lead to unconventional superconductivity by the Kohn-Luttinger mechanism. Superconductivity is strongly enhanced when the inner and outer Fermi surfaces are close to each other. The most prevalent state has chiral p-wave symmetry, but d-wave and extended s-wave pairing are also possible. We discuss these results in the context of rhombohedral trilayer graphene, where superconductivity was recently discovered in regimes where the normal state has an annular Fermi surface. Using realistic parameters, our mechanism can account for the order of magnitude of $T_c$, as well as its trends as a function of electron density and perpendicular displacement field. Moreover, it naturally explains some of the outstanding puzzles in this material, that include the weak temperature dependence of the resistivity above $T_c$, and the proximity of spin singlet superconductivity to the ferromagnetic phase.

*A.G. acknowledges support by the European Unions Horizon 2020 research and innovation program under the Marie Sklodowska-Curie Grant Agreement No.~754411. E.B. and T.H. were supported by the European Research Council (ERC) under grant HQMAT (Grant Agreement No.~817799), by the Israel-USA Binational Science Foundation (BSF), and by a Research grant from Irving and Cherna Moskowitz.

Publication: https://arxiv.org/abs/2109.00011

Presenters

  • Erez Berg

    • Weizmann Institute of Science

Authors

  • Erez Berg

    • Weizmann Institute of Science
  • Areg Ghazaryan

    • Institute of Science and Technology Aust
  • Tobias Holder

    • Weizmann Institute of Science
  • Maksym Serbyn

    • Institute of Science and Technology Austria