Majorana-Weyl cones in ferroelectric superconductors
Hennadii Yerzhakov, Roni Ilan, Efrat Shimshoni, and Jonathan Ruhman

TL;DR
This paper predicts the emergence of Majorana-Weyl cones and related topological phenomena in ferroelectric superconductors with Rashba spin-orbit coupling under magnetic fields, suggesting new experimental signatures.
Contribution
It introduces a model demonstrating Majorana-Weyl cones in ferroelectric superconductors and explores their surface states, vortex behavior, and topological transitions under magnetic fields.
Findings
Majorana-Weyl cones appear above a critical Zeeman field
Surface Majorana arcs and domain wall states are predicted
Topological halos around vortices lead to bulk topological transitions
Abstract
Topological superconductors are predicted to exhibit outstanding phenomena, including non-abelian anyon excitations, heat-carrying edge states, and topological nodes in the Bogoliubov spectra. Nonetheless, and despite major experimental efforts, we are still lacking unambiguous signatures of such exotic phenomena. In this context, the recent discovery of coexisting superconductivity and ferroelectricity in lightly doped and ultra clean SrTiO opens new opportunities. Indeed, a promising route to engineer topological superconductivity is the combination of strong spin-orbit coupling and inversion-symmetry breaking. Here we study a three-dimensional parabolic band minimum with Rashba spin-orbit coupling, whose axis is aligned by the direction of a ferroelectric moment. We show that all of the aforementioned phenomena naturally emerge in this model when a magnetic field is applied.…
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Taxonomy
TopicsHigh-pressure geophysics and materials · Solid-state spectroscopy and crystallography · Topological Materials and Phenomena
