English

Microscopic prediction of skyrmion lattice state in clean interface superconductors

Superconductivity 2014-08-20 v2

Abstract

When an in-plane field is applied to a clean interface superconductor, a Fulde-Ferrell-Larkin-Ovchinnikov (FFLO)-like phase is stabilized. This phase has a U(1)×U(1)\mathrm{U}(1)\times\mathrm{U}(1) symmetry and, in principle, this symmetry allows for flux carrying topological excitations different from Abrikosov vortices (which are the simplest defects associated with S1S1S^1 \to S^1 maps). However, in practice, largely due to electromagnetic and other intercomponent interactions, such topological excitations are very rare in superconducting systems. Here we demonstrate that a realistic microscopic theory for interface superconductors, such as SrTiO3_3/LaAlO3_3, predicts an unconventional magnetic response where the flux-carrying objects are skyrmions, characterized by homotopy invariants of S2S2S^2 \to S^2 maps. Additionally, we show that this microscopic theory predicts that stable fractional vortices form near the boundary of these superconductors. It also predicts the appearance of type-1.5 superconductivity for some range of parameters. Central to these results is the assumption that the Rashba spin orbit coupling is much larger than the superconducting gap.

Keywords

Cite

@article{arxiv.1403.6655,
  title  = {Microscopic prediction of skyrmion lattice state in clean interface superconductors},
  author = {Daniel F. Agterberg and Egor Babaev and Julien Garaud},
  journal= {arXiv preprint arXiv:1403.6655},
  year   = {2014}
}

Comments

Replaced with a version in print in Phys. Rev. B; Improved and extended as compared to the first version; 10 pages, 6 figures