arXiv Analytics

Sign in

arXiv:cond-mat/9903165AbstractReferencesReviewsResources

Raman scattering in a two-dimensional electron gas: Boltzmann equation approach

E. G. Mishchenko

Published 1999-03-10Version 1

The inelastic light scattering in a 2-d electron gas is studied theoretically using the Boltzmann equation techniques. Electron-hole excitations produce the Raman spectrum essentially different from the one predicted for the 3-d case. In the clean limit it has the form of a strong non-symmetric resonance due to the square root singularity at the electron-hole frequency $\omega = vk$ while in the opposite dirty limit the usual Lorentzian shape of the cross section is reestablished. The effects of electromagnetic field are considered self-consistently and the contribution from collective plasmon modes is found. It is shown that unlike 3-d metals where plasmon excitations are unobservable (because of very large required transfered frequencies), the two-dimensional electron system gives rise to a low-frequency ($\omega \propto k^{1/2}$) plasmon peak. A measurement of the width of this peak can provide data on the magnitude of the electron scattering rate.

Comments: 4 pages, 3 figures. to appear in Phys. Rev. B 59 (1999)
Journal: Phys. Rev. B 59, 14892 (1999).
Related articles: Most relevant | Search more
arXiv:0808.0292 [cond-mat.mes-hall] (Published 2008-08-03)
Raman scattering in current carrying molecular junctions. A preliminary account
arXiv:0810.4198 [cond-mat.mes-hall] (Published 2008-10-23, updated 2009-06-11)
Temperature-dependent Drude transport in a two-dimensional electron gas
arXiv:cond-mat/0506260 (Published 2005-06-11)
Strip plasmons in a two-dimensional electron gas with grounded electrodes