English

Density functional theory of electron transfer beyond the Born-Oppenheimer approximation: Case study of LiF

Chemical Physics 2018-03-01 v2

Abstract

We perform model calculations for a stretched LiF molecule, demonstrating that nonadiabatic charge transfer effects can be accurately and seamlessly described within a density functional framework. In alkali halides like LiF, there is an abrupt change in the ground state electronic distribution due to an electron transfer at a critical bond length R=RcR=R_c, where a barely avoided crossing of the lowest adiabatic potential energy surfaces calls the validity of the Born-Oppenheimer approximation into doubt. Modeling the RR-dependent electronic structure of LiF within a two-site Hubbard model, we find that nonadiabatic electron-nuclear coupling produces a sizable elongation of the critical RcR_c by 0.5 Bohr. This effect is very accurately captured by a simple and rigorously-derived correction, with an M1M^{-1} prefactor, to the exchange-correlation potential in density functional theory; M=M= reduced nuclear mass. Since this nonadiabatic term depends on gradients of the nuclear wavefunction and conditional electronic density, Rχ(R)\nabla_R \chi(R) and Rn(r,R)\nabla_R n(\mathbf{r},R), it couples the Kohn-Sham equations at neighboring RR points. Motivated by an observed localization of nonadiabatic effects in nuclear configuration space, we propose a local conditional density approximation -- an approximation that reduces the search for nonadiabatic density functionals to the search for a single function y(n)y(n).

Keywords

Cite

@article{arxiv.1710.11377,
  title  = {Density functional theory of electron transfer beyond the Born-Oppenheimer approximation: Case study of LiF},
  author = {Chen Li and Ryan Requist and E. K. U. Gross},
  journal= {arXiv preprint arXiv:1710.11377},
  year   = {2018}
}