A new and efficient approach to time-dependent density-functional perturbation theory for optical spectroscopy
Materials Science
2009-11-11 v1
Abstract
Using a super-operator formulation of linearized time-dependent density-functional theory, the dynamical polarizability of a system of interacting electrons is given a matrix continued-fraction representation whose coefficients can be obtained from the non-symmetric block-Lanczos method. The resulting algorithm allows for the calculation of the {\em full spectrum} of a system with a computational workload which is only a few times larger than that needed for {\em static} polarizabilities within time-independent density-functional perturbation theory. The method is demonstrated with the calculation of the spectrum of benzene, and prospects for its application to the large-scale calculation of optical spectra are discussed.
Cite
@article{arxiv.cond-mat/0508398,
title = {A new and efficient approach to time-dependent density-functional perturbation theory for optical spectroscopy},
author = {B. Walker and A. M. Saitta and R. Gebauer and S. Baroni},
journal= {arXiv preprint arXiv:cond-mat/0508398},
year = {2009}
}
Comments
4 pages, 2 figures