| Literature DB >> 34417292 |
Dahvyd Wing1, Guy Ohad1, Jonah B Haber2,3, Marina R Filip4, Stephen E Gant2,3, Jeffrey B Neaton2,3,5, Leeor Kronik6.
Abstract
Accurate prediction of fundamental band gaps of crystalline solid-state systems entirely within density functional theory is a long-standing challenge. Here, we present a simple and inexpensive method that achieves this by means of nonempirical optimal tuning of the parameters of a screened range-separated hybrid functional. The tuning involves the enforcement of an ansatz that generalizes the ionization potential theorem to the removal of an electron from an occupied state described by a localized Wannier function in a modestly sized supercell calculation. The method is benchmarked against experiment for a set of systems ranging from narrow band-gap semiconductors to large band-gap insulators, spanning a range of fundamental band gaps from 0.2 to 14.2 electronvolts (eV), and is found to yield quantitative accuracy across the board, with a mean absolute error of ∼0.1 eV and a maximal error of ∼0.2 eV.Entities:
Keywords: band gap; density functional theory; optimal tuning
Year: 2021 PMID: 34417292 PMCID: PMC8403912 DOI: 10.1073/pnas.2104556118
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205