Topological superconductivity induced by spin-orbit coupling, perpendicular magnetic field and superlattice potential
Jonathan Schirmer, J. K. Jain, C. -X. Liu

TL;DR
This paper explores how a combination of spin-orbit coupling, magnetic fields, and superlattice potentials can induce topological superconductivity in a 2D s-wave superconductor, revealing novel vortex structures and topological phases.
Contribution
It demonstrates that external periodic potentials and spin-orbit coupling can support topological superconductivity with unique vortex lattices, expanding the understanding of topological phases in conventional superconductors.
Findings
Landau levels broadened by periodic potential support topological superconductivity.
Topological phase characterized by giant $h/e$ vortices instead of $h/2e$ Abrikosov vortices.
Ground state current remains zero despite complex pairing potential.
Abstract
Topological superconductors support Majorana modes, which are quasiparticles that are their own antiparticles and which obey non-Abelian statistics in which successive exchanges of particles do not always commute. Here we investigate whether a two-dimensional superconductor with ordinary s-wave pairing can be rendered topological by the application of a strong magnetic field. To address this, we obtain the self-consistent solutions to the mean field Bogoliubov-de Gennes equations, which are a large set of nonlinearly coupled equations, for electrons moving on a lattice. We find that the topological "quantum Hall superconductivity" is facilitated by a combination of spin-orbit coupling, which locks an electron's spin to its momentum as it moves through a material, and a coupling to an external periodic potential which gives a dispersion to the Landau levels and also distorts the…
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Taxonomy
TopicsTopological Materials and Phenomena · Physics of Superconductivity and Magnetism · Quantum and electron transport phenomena
