Odd triplet pairing effects induced by interface spin-flip scatterings: critical temperature of superconductor/ferromagnet bilayers
Abstract
The superconducting critical temperature of a superconductor/ferromagnet (S/F) bilayer with spin-flip scatterings at the interface is calculated as a function of the ferromagnet thickness in the dirty limit employing the Usadel equation. The appropriate boundary conditions from the spin-flip scatterings at the S/F interface are derived for the Usadel equation which includes the spin triplet pairing components as well as the spin singlet one. The spin-flip processes induce the spin triplet pairing components with s-wave in momentum and odd symmetry in frequency from the s-wave singlet order parameter of the superconductor region. The induced triplet components alter the singlet order parameter in the superconductor through boundary conditions at the interface and, consequently, change the of an S/F bilayer system. The calculated , like the case of no spin-flips, shows non-monotonic behavior which typically decreases as is increased from 0 and shows a shallow minimum and then saturates slowly as is further increased. It is well established that as the interface resistance (parameterized in terms of ) is increased, the is increased for a given and the non-monotonic feature in is strongly suppressed. As the spin flip scattering (parameterized in terms of ) is increased, on the other hand, the is also increased for a given , but the non-monotonic feature in is less suppressed or even enhanced, through the formation of the spin triplet components.
Cite
@article{arxiv.cond-mat/0407149,
title = {Odd triplet pairing effects induced by interface spin-flip scatterings: critical temperature of superconductor/ferromagnet bilayers},
author = {Hyeonjin Doh and Han-Yong Choi},
journal= {arXiv preprint arXiv:cond-mat/0407149},
year = {2007}
}
Comments
14 pages, 8 figures, revtex4, submitted to PRB