English

Half-Metallic Superconducting Triplet Spin Valve

Superconductivity 2018-03-12 v1

Abstract

We theoretically study a finite size SF1NF2SF_1NF_2 spin valve, where a normal metal (NN) insert separates a thin standard ferromagnet (F1F_1) and a thick half-metallic ferromagnet (F2F_2). For sufficiently thin superconductor (SS) widths close to the coherence length ξ0\xi_0, we find that changes to the relative magnetization orientations in the ferromagnets can result in substantial variations in the transition temperature TcT_c, consistent with experiment [Singh et al., Phys. Rev. X 5, 021019 (2015)]. Our results demonstrate that, in good agreement with the experiment, the variations are largest in the case where F2F_2 is in a half-metallic phase and thus supports only one spin direction. To pinpoint the origins of this strong spin-valve effect, both the equal-spin f1f_1 and opposite-spin f0f_0 triplet correlations are calculated using a self-consistent microscopic technique. We find that when the magnetization in F1F_1 is tilted slightly out-of-plane, the f1f_1 component can be the dominant triplet component in the superconductor. The coupling between the two ferromagnets is discussed in terms of the underlying spin currents present in the system. We go further and show that the zero energy peaks of the local density of states probed on the SS side of the valve can be another signature of the presence of superconducting triplet correlations. Our findings reveal that for sufficiently thin SS layers, the zero energy peak at the SS side can be larger than its counterpart in the F2F_2 side.

Keywords

Cite

@article{arxiv.1607.03899,
  title  = {Half-Metallic Superconducting Triplet Spin Valve},
  author = {Klaus Halterman and Mohammad Alidoust},
  journal= {arXiv preprint arXiv:1607.03899},
  year   = {2018}
}
R2 v1 2026-06-22T14:53:59.154Z