English

Electrical expression of spin accumulation in ferromagnet/semiconductor structures

Materials Science 2008-02-20 v1 Mesoscale and Nanoscale Physics

Abstract

We treat the spin injection and extraction via a ferromagnetic metal/semiconductor Schottky barrier as a quantum scattering problem. This enables the theory to explain a number of phenomena involving spin-dependent current through the Schottky barrier, especially the counter-intuitive spin polarization direction in the semiconductor due to current extraction seen in recent experiments. A possible explanation of this phenomenon involves taking into account the spin-dependent inelastic scattering via the bound states in the interface region. The quantum-mechanical treatment of spin transport through the interface is coupled with the semiclassical description of transport in the adjoining media, in which we take into account the in-plane spin diffusion along the interface in the planar geometry used in experiments. The theory forms the basis of the calculation of spin-dependent current flow in multi-terminal systems, consisting of a semiconductor channel with many ferromagnetic contacts attached, in which the spin accumulation created by spin injection/extraction can be efficiently sensed by electrical means. A three-terminal system can be used as a magnetic memory cell with the bit of information encoded in the magnetization of one of the contacts. Using five terminals we construct a reprogrammable logic gate, in which the logic inputs and the functionality are encoded in magnetizations of the four terminals, while the current out of the fifth one gives a result of the operation.

Keywords

Cite

@article{arxiv.0709.2707,
  title  = {Electrical expression of spin accumulation in ferromagnet/semiconductor structures},
  author = {L. Cywinski and H. Dery and P. Dalal and L. J. Sham},
  journal= {arXiv preprint arXiv:0709.2707},
  year   = {2008}
}

Comments

A review to appear in Mod. Phys. Lett. B

R2 v1 2026-06-21T09:18:28.656Z