English

Quasiparticle conductance in Spin Valve Josephson Structures

Superconductivity 2020-07-01 v1 Mesoscale and Nanoscale Physics

Abstract

We study the quasiparticle current in clean ferromagnetic Josephson structures of the form S1/F1/N/F2/S2S_1/F_1/N/F_2/S_2, where SS, FF, and NN denote superconducting, ferromagnetic or normal layers respectively. Our focus is on the structure of the conductance GG as a function of bias VV, emphasizing the subgap region. We use a fully self consistent numerical method, coupled to a transfer matrix procedure to extract G(V)G(V). We choose material parameters appropriate to experimentally realized Co Cu Nb structures. We find a resonance peak structure as a function of the intermediate layer thickness and of the misalignement angle ϕ\phi between FF layers. To understand this resonance structure, we develop an approximate analytic method. For experimentally relevant thicknesses, the conductance has multiple subgap peaks which oscillate in position between low and critical bias positions. These oscillations occur in both ϕ\phi and the layer thicknesses. We compare our results with those obtained for the spin valve structures (F1/N/F2/S2)(F_1/N/F_2/S_2) and discuss the implications of our results for the fabrication of spin Josephson devices.

Keywords

Cite

@article{arxiv.1912.02715,
  title  = {Quasiparticle conductance in Spin Valve Josephson Structures},
  author = {Evan Moen and Oriol T. Valls},
  journal= {arXiv preprint arXiv:1912.02715},
  year   = {2020}
}

Comments

16 pages including figures

R2 v1 2026-06-23T12:37:10.789Z