English

Semiconductor-ferromagnet-superconductor planar heterostructures for 1D topological superconductivity

Mesoscale and Nanoscale Physics 2022-08-22 v2

Abstract

Hybrid structures of semiconducting (SM) nanowires, epitaxially grown superconductors (SC), and ferromagnetic-insulator (FI) layers have been explored experimentally and theoretically as alternative platforms for topological superconductivity at zero magnetic field. Here, we analyze a tripartite SM/FI/SC heterostructure but realized in a planar stacking geometry, where the thin FI layer acts as a spin-polarized tunneling barrier between the SM and the SC. We optimize the system's geometrical parameters using microscopic simulations, finding the range of FI thicknesses for which the hybrid system can be tuned into the topological regime. Within this range, and thanks to the vertical confinement provided by the stacking geometry, trivial and topological phases alternate regularly as the external gate is varied, displaying a hard topological gap that can reach half of the SC one. This is a significant improvement compared to setups using hexagonal nanowires, which show erratic topological regions with typically smaller and softer gaps. Our proposal provides a magnetic field-free planar design for quasi-one-dimensional topological superconductivity with attractive properties for experimental control and scalability.

Keywords

Cite

@article{arxiv.2203.06644,
  title  = {Semiconductor-ferromagnet-superconductor planar heterostructures for 1D topological superconductivity},
  author = {Samuel D. Escribano and Andrea Maiani and Martin Leijnse and Karsten Flensberg and Yuval Oreg and Alfredo Levy Yeyati and Elsa Prada and Rubén Seoane Souto},
  journal= {arXiv preprint arXiv:2203.06644},
  year   = {2022}
}

Comments

17 pages, 16 figures, published version

R2 v1 2026-06-24T10:11:27.009Z