arXiv:1212.1933 [cond-mat.mes-hall]AbstractReferencesReviewsResources
Interacting drift-diffusion theory for photoexcited electron-hole gratings in semiconductor quantum wells
Published 2012-12-09Version 1
Phase-resolved transient grating spectroscopy in semiconductor quantum wells has been shown to be a powerful technique for measuring the electron-hole drag resistivity $\rho_{eh}$, which depends on the Coulomb interaction between the carriers. In this paper we develop the interacting drift-diffusion theory, from which $\rho_{eh}$ can be determined, given the measured mobility of an electron-hole grating. From this theory we predict a cross-over from a high-excitation-density regime, in which the mobility has the "normal" positive value, to a low-density regime, in which Coulomb-drag dominates and the mobility becomes negative. At the crossover point, the mobility of the grating vanishes.
Comments: 5 pages, 5 figures
Journal: Phys. Rev. Lett. 110, 096601 (2013)
Categories: cond-mat.mes-hall
Keywords: semiconductor quantum wells, interacting drift-diffusion theory, photoexcited electron-hole gratings, electron-hole drag resistivity, transient grating spectroscopy
Tags: journal article
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