English

Current-induced spin polarization at the surface of metallic films: a theorem and an ab initio calculation

Mesoscale and Nanoscale Physics 2015-06-23 v1

Abstract

The broken inversion symmetry at the surface of a metallic film (or, more generally, at the interface between a metallic film and a different metallic or insulating material) greatly amplifies the influence of the spin-orbit interaction on the surface properties. The best known manifestation of this effect is the momentum-dependent splitting of the surface state energies (Rashba effect). Here we show that the same interaction also generates a spin-polarization of the bulk states when an electric current is driven through the bulk of the film. For a semi-infinite jellium model, which is representative of metals with a closed Fermi surface, we prove as a theorem that, regardless of the shape of the confinement potential, the induced surface spin density at each surface is given by S=γz^×j{\bf S} =-\gamma \hbar {\bf \hat z}\times {\bf j}, where j{\bf j} is the particle current density in the bulk, z^{\bf \hat z} the unit vector normal to the surface, and γ=4mc2\gamma=\frac{\hbar}{4mc^2} contains only fundamental constants. For a general metallic solid γ\gamma becomes a material-specific parameter that controls the strength of the interfacial spin-orbit coupling. Our theorem, combined with an {\it ab initio} calculation of the spin polarization of the current-carrying film, enables a determination of γ\gamma, which should be useful in modeling the spin-dependent scattering of quasiparticles at the interface.

Keywords

Cite

@article{arxiv.1410.3693,
  title  = {Current-induced spin polarization at the surface of metallic films: a theorem and an ab initio calculation},
  author = {I. V. Tokatly and E. E. Krasovskii and G. Vignale},
  journal= {arXiv preprint arXiv:1410.3693},
  year   = {2015}
}

Comments

5 pages, 2 figures