pith. sign in

arxiv: 1405.5809 · v1 · pith:GB6XIDEEnew · submitted 2014-05-22 · ⚛️ physics.chem-ph · cond-mat.mtrl-sci· physics.atom-ph· physics.comp-ph

A self-interaction-free local hybrid functional: Accurate binding energies vis-\`a-vis accurate ionization potentials from Kohn-Sham eigenvalues

classification ⚛️ physics.chem-ph cond-mat.mtrl-sciphysics.atom-phphysics.comp-ph
keywords functionalaccuratekohn-shambindingeigenvaluesenergiesenergyionization
0
0 comments X p. Extension
pith:GB6XIDEE Add to your LaTeX paper What is a Pith Number?
\usepackage{pith}
\pithnumber{GB6XIDEE}

Prints a linked pith:GB6XIDEE badge after your title and writes the identifier into PDF metadata. Compiles on arXiv with no extra files. Learn more

read the original abstract

We present and test a new approximation for the exchange-correlation (xc) energy of Kohn-Sham density functional theory. It combines exact exchange with a compatible non-local correlation functional. The functional is by construction free of one-electron self-interaction, respects constraints derived from uniform coordinate scaling, and has the correct asymptotic behavior of the xc energy density. It contains one parameter that is not determined ab initio. We investigate whether it is possible to construct a functional that yields accurate binding energies and affords other advantages, specifically Kohn-Sham eigenvalues that reliably reflect ionization potentials. Tests for a set of atoms and small molecules show that within our local-hybrid form accurate binding energies can be achieved by proper optimization of the free parameter in our functional, along with an improvement in dissociation energy curves and in Kohn-Sham eigenvalues. However, the correspondence of the latter to experimental ionization potentials is not yet satisfactory, and if we choose to optimize their prediction, a rather different value of the functional's parameter is obtained. We put this finding in a larger context by discussing similar observations for other functionals and possible directions for further functional development that our findings suggest.

This paper has not been read by Pith yet.

discussion (0)

Sign in with ORCID, Apple, or X to comment. Anyone can read and Pith papers without signing in.