Dynamical simulation of the injection of vortices into a Majorana edge mode
Abstract
The chiral edge modes of a topological superconductor can transport fermionic quasiparticles, with Abelian exchange statistics, but they can also transport non-Abelian anyons: Edge-vortices bound to a -phase domain wall that propagates along the boundary. A pair of such edge-vortices is injected by the application of an flux bias over a Josephson junction. Existing descriptions of the injection process rely on the instantaneous scattering approximation of the adiabatic regime [Beenakker et al. Phys.Rev.Lett. 122, (2019)], where the internal dynamics of the Josephson junction is ignored. Here we go beyond that approximation in a time-dependent many-body simulation of the injection process, followed by a braiding of mobile edge-vortices with a pair of immobile Abrikosov vortices in the bulk of the superconductor. Our simulation sheds light on the properties of the Josephson junction needed for a successful implementation of a flying topological qubit.
Keywords
Cite
@article{arxiv.2307.07447,
title = {Dynamical simulation of the injection of vortices into a Majorana edge mode},
author = {I. M. Flór and A. Donís-Vela and C. W. J. Beenakker and G. Lemut},
journal= {arXiv preprint arXiv:2307.07447},
year = {2023}
}
Comments
13 pages 13 figures