English

Induced Triplet Pairing in clean s-wave Superconductor/Ferromagnet layered structures

Superconductivity 2009-11-13 v1

Abstract

We study induced triplet pairing correlations in clean ferromagnet/superconductor/ferromagnet heterostructures. The pairing state in the superconductor is the conventional singlet s-wave, and the angle α\alpha between the magnetizations of the two ferromagnetic layers is arbitrary. We use a numerical fully self-consistent solution of the microscopic equations and obtain the time-dependent triplet correlations via the Heisenberg equations of motion. We find that in addition to the usual singlet correlations, triplet correlations, odd in time as required by the Pauli principle, are induced in both the ferromagnets and the superconductor. These time-dependent correlations are largest at times of order of the inverse of the Debye cutoff frequency, ωD\omega_D, and we find that within that time scale they are often spatially very long ranged. We discuss the behavior of the characteristic penetration lengths that describe these triplet correlations. We also find that the ferromagnets can locally magnetize the superconductor near the interface, and that the local magnetization then undergoes strongly damped oscillations. The local density of states exhibits a variety of energy signatures, which we discuss, as a function of ferromagnetic strength and α\alpha.

Keywords

Cite

@article{arxiv.0803.3174,
  title  = {Induced Triplet Pairing in clean s-wave Superconductor/Ferromagnet layered structures},
  author = {Klaus Halterman and Oriol T. Valls and Paul H. Barsic},
  journal= {arXiv preprint arXiv:0803.3174},
  year   = {2009}
}

Comments

12 pages including 11 figures

R2 v1 2026-06-21T10:23:29.140Z