English

Second Order Topological Superconductivity in $\pi$-Junction Rashba Layers

Mesoscale and Nanoscale Physics 2019-04-04 v1

Abstract

We consider a Josephson junction bilayer consisting of two tunnel-coupled two-dimensional electron gas layers with Rashba spin-orbit interaction, proximitized by a top and bottom ss-wave superconductor with phase difference ϕ\phi close to π\pi. We show that, in the presence of a finite weak in-plane Zeeman field, the bilayer can be driven into a second order topological superconducting phase, hosting two Majorana corner states (MCSs). If ϕ=π\phi=\pi, in a rectangular geometry, these zero-energy bound states are located at two opposite corners determined by the direction of the Zeeman field. If the phase difference ϕ\phi deviates from π\pi by a critical value, one of the two MCSs gets relocated to an adjacent corner. As the phase difference ϕ\phi increases further, the system becomes trivially gapped. The obtained MCSs are robust against static and magnetic disorder. We propose two setups that could realize such a model: one is based on controlling ϕ\phi by magnetic flux, the other involves an additional layer of randomly-oriented magnetic impurities responsible for the phase shift of π\pi in the proximity-induced superconducting pairing.

Keywords

Cite

@article{arxiv.1811.01827,
  title  = {Second Order Topological Superconductivity in $\pi$-Junction Rashba Layers},
  author = {Yanick Volpez and Daniel Loss and Jelena Klinovaja},
  journal= {arXiv preprint arXiv:1811.01827},
  year   = {2019}
}
R2 v1 2026-06-23T05:04:39.833Z