English

Electronic viscosity in a quantum well: A test for the local density approximation

Mesoscale and Nanoscale Physics 2009-11-13 v1 Strongly Correlated Electrons

Abstract

In the local density approximation (LDA) for electronic time-dependent current-density functional theory (TDCDFT) many-body effects are described in terms of the visco-elastic constants of the homogeneous three-dimensional electron gas. In this paper we critically examine the applicability of the three-dimensional LDA to the calculation of the viscous damping of 1-dimensional collective oscillations of angular frequency ω\omega in a quasi 2-dimensional quantum well. We calculate the effective viscosity ζ(ω)\zeta(\omega) from perturbation theory in the screened Coulomb interaction and compare it with the commonly used three-dimensional LDA viscosity Y(ω)Y(\omega). Significant differences are found. At low frequency Y(ω)Y(\omega) is dominated by a shear term, which is absent in ζ(ω)\zeta(\omega). At high frequency ζ(ω)\zeta(\omega) and Y(ω)Y(\omega) exhibit different power law behaviors (ω3\omega^{-3} and ω5/2\omega^{-5/2} respectively), reflecting different spectral densities of electron-hole excitations in two and three dimensions. These findings demonstrate the need for better approximations for the exchange-correlation stress tensor in specific systems where the use of the three-dimensional functionals may lead to unphysical results.

Keywords

Cite

@article{arxiv.cond-mat/0702538,
  title  = {Electronic viscosity in a quantum well: A test for the local density approximation},
  author = {Roberto D'Agosta and Massimiliano Di Ventra and Giovanni Vignale},
  journal= {arXiv preprint arXiv:cond-mat/0702538},
  year   = {2009}
}

Comments

10 pages, 7 figures, RevTex4

R2 v1 2026-07-22T11:43:37.878Z