Time-reversal invariant topological superconductivity in doped Weyl semimetals
Pavan Hosur, Xi Dai, Zhong Fang, Xiao-Liang Qi

TL;DR
This paper proposes that doped Weyl semimetals can host time-reversal invariant topological superconductivity, characterized by Majorana surface states, through specific interactions and symmetry considerations.
Contribution
It demonstrates how microscopic interactions in doped Weyl semimetals can induce topological superconductivity without relying on special pairing momentum dependence.
Findings
Inversion symmetry favors topological phases with onsite interactions.
Breaking inversion symmetry enhances the topological superconducting region.
Various nodal phases are induced by repulsive and exchange interactions.
Abstract
Time-reversal invariant topological superconductors are a new state of matter which have a bulk superconducting gap and robust Majorana fermion surface states. These have not yet been realized in solid state systems. In this paper, we propose that this state can be realized in doped Weyl semimetals or Weyl metals. The Fermi surfaces of a Weyl metal carry Chern numbers, which is a required ingredient for such a topological superconductor. By applying the fluctuation-exchange approach to a generic model of time-reversal invariant Dirac and Weyl semimetals, we investigate what microscopic interactions can supply the other ingredient, viz., sign changing of the superconducting gap function between Fermi surfaces with opposite Chern numbers. We find that if the normal state is inversion symmetric, onsite repulsive and exchange interactions induce various nodal phases as well as a small…
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Taxonomy
TopicsTopological Materials and Phenomena · Quantum, superfluid, helium dynamics · Cold Atom Physics and Bose-Einstein Condensates
