Magneto-gyrotropic effects in semiconductor quantum wells (review)
arXiv:0803.0949 · doi:10.1088/0268-1242/23/11/114003
Abstract
Magneto-gyrotropic photogalvanic effects in quantum wells are reviewed. We discuss experimental data, results of phenomenological analysis and microscopic models of these effects. The current flow is driven by spin-dependent scattering in low-dimensional structures gyrotropic media resulted in asymmetry of photoexcitation and relaxation processes. Several applications of the effects are also considered.
28 pages, 13 figures
References in corpus (7)
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