Chiral Majorana fermions in graphene from proximity-induced superconductivity
Abstract
We present a detailed theoretical study of chiral topological superconductor phases in proximity-superconducting graphene systems based on an effective model inspired by DFT simulations. Inducing s-wave superconductivity to quantum anomalous Hall effect systems leads to chiral topological superconductors. For out-of-plane magnetization we find topological superconducting phases with even numbers of chiral Majorana fermions per edge which is correlated to the opening of a nontrivial gap in the bulk system in the -points and their connection under particle-hole symmetry. We show that in a quantum anomalous Hall insulator with in-plane magnetization and nontrivial gap opening at , the corresponding topological superconductor can be tuned to host only single chiral Majorana states at its edge which is promising for proposals exploiting such states for braiding operations.
Keywords
Cite
@article{arxiv.2004.01767,
title = {Chiral Majorana fermions in graphene from proximity-induced superconductivity},
author = {Petra Högl and Tobias Frank and Denis Kochan and Martin Gmitra and Jaroslav Fabian},
journal= {arXiv preprint arXiv:2004.01767},
year = {2020}
}