Strong electron spin-Hall effect by a coherent optical potential
arXiv:0911.3577 · doi:10.1088/0268-1242/25/9/095004
Abstract
We demonstrate theoretically that a coherent manipulation of electron spins in low-dimensional semiconductor structures with spin-orbit coupling by infrared radiation is possible. The proposed approach is based on using a dipole force acting on a two-level system in a nonuniform optical field, similar to that employed in the design of the cold atoms diode. For ballistic electrons the spin-dependent force, proportional to the intensity of external radiation, leads to a spin-Hall effect and resulting spin separation even if the spin-orbit coupling itself does not allow for these effects. Achievable spatial separation of electrons with opposite spins can be of the order of several tenth of a micron, an order of magnitude larger than can be produced by the charged impurity scattering in the diffusive regime.
2 figures
References in corpus (8)
- Orbital mechanisms of electron spin manipulation by an electric field
- Effect of Induced Spin-Orbit Coupling for Atoms via Laser Fields
- Pure spin current from one-photon absorption of linearly polarized light in noncentrosymmetric semiconductors
- Efficient electron spin manipulation in a quantum well by an in-plane electric field
- Spin current injection by intersubband transitions in quantum wells
- Pure spin photocurrents
- Generation of spin currents via Raman scattering
- Improvement by laser quenching of an "atom diode": a one-way barrier for ultra-cold atoms