Quasiparticle Spectra from a Nonempirical Optimally Tuned Range-Separated Hybrid Density Functional

ORAL

Abstract

We present a method for obtaining outer-valence quasiparticle excitation energies from a density-functional-theory-based calculation, with an accuracy that is comparable to that of many-body perturbation theory within the GW approximation. The approach uses a range-separated hybrid density functional, with an asymptotically exact and short-range fractional Fock exchange. The functional contains two parameters, the range separation and the short-range Fock fraction. Both are determined nonempirically, per system, on the basis of the satisfaction of exact physical constraints for the ionization potential and many-electron self-interaction, respectively. The accuracy of the method is demonstrated on four important benchmark organic molecules: perylene, pentacene, 3,4,9,10-perylene-tetracarboxylic dianhydride (PTCDA), and 1,4,5,8-naphthalene-tetracarboxylic dianhydride (NTCDA). We envision that for finite systems the approach could provide an inexpensive alternative to GW, opening the door to the study of presently out of reach large-scale systems (Phys. Rev. Lett., in press).

Authors

  • Sivan Refaely-Abramson

    • Weizmann Institute of Science, Israel
  • Sahar Sharifzadeh

    • Lawrence Berkeley National Laboratory, USA
  • Niranjan Govind

    • Pacific Northwest National Laboratory, USA
  • Jochen Autschbach

    • University at Buffalo, State University of New York, USA
  • Jeffrey B. Neaton

    • Lawrence Berkeley National Laboratory, USA
  • Roi Baer

    • Institute of Chemistry, Hebrew University, Israel
  • Leeor Kronik

    • Weizmann Institute of Science, Israel