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Macroscopic dielectric function within time-dependent density functional theory-Real time evolution versus the Casida approach

Veröffentlichungen: Beitrag in FachzeitschriftArtikelPeer Reviewed

Abstract

Linear optical properties can be calculated by solving the time-dependent density functional theory equations. Linearization of the equation of motion around the ground state orbitals results in the so-called Casida equation, which is formally very similar to the Bethe-Salpeter equation. Alternatively one can determine the spectral functions by applying an infinitely short electric field in time and then following the evolution of the electron orbitals and the evolution of the dipole moments. The long wavelength response function is then given by the Fourier transformation of the evolution of the dipole moments in time. In this work, we compare the results and performance of these two approaches for the projector augmented wave method. To allow for large time steps and still rely on a simple difference scheme to solve the differential equation, we correct for the errors in the frequency domain, using a simple analytic equation. In general, we find that both approaches yield virtually indistinguishable results. For standard density functionals, the time evolution approach is, with respect to the computational performance, clearly superior compared to the solution of the Casida equation. However, for functionals including nonlocal exchange, the direct solution of the Casida equation is usually much more efficient, even though it scales less beneficial with the system size. We relate this to the large computational prefactors in evaluating the nonlocal exchange, which renders the time evolution algorithm fairly inefficient.
OriginalspracheEnglisch
Aufsatznummer064110
Seitenumfang13
FachzeitschriftJournal of Chemical Physics
Jahrgang146
Ausgabenummer6
DOIs
PublikationsstatusVeröffentlicht - 14 Feb. 2017

ÖFOS 2012

  • 103025 Quantenmechanik
  • 103036 Theoretische Physik
  • 103015 Kondensierte Materie
  • 103009 Festkörperphysik
  • ViCoM II: Vienna Computational Materials Laboratory

    Süss, D. (Co-Projektleiter*in), Kresse, G. (Projektleiter*in), Held, K. (Co-Projektleiter*in), Verstraete, F. (Co-Projektleiter*in), Burgdorfer, J. (Projektleiter*in), Mauser, N. (Co-Projektleiter*in), Blaha, P. (Co-Projektleiter*in), Mohn, P. (Co-Projektleiter*in), Podloucky, R. (Co-Projektleiter*in), Dellago, C. (Co-Projektleiter*in) & Resch, A. (Projektadministrator*in)

    1/06/1030/06/19

    Projekt: Forschungsförderung

Zitationsweisen