Laplacian-level density functionals for the kinetic energy density and exchange-correlation energy
Abstract
We construct a Laplacian-level meta-generalized gradient approximation (meta-GGA) for the non-interacting (Kohn-Sham orbital) positive kinetic energy density of an electronic ground state of density . This meta-GGA is designed to recover the fourth-order gradient expansion in the appropiate slowly-varying limit and the von Weizs\"{a}cker expression in the rapidly-varying limit. It is constrained to satisfy the rigorous lower bound . Our meta-GGA is typically a strong improvement over the gradient expansion of for atoms, spherical jellium clusters, jellium surfaces, the Airy gas, Hooke's atom, one-electron Gaussian density, quasi-two dimensional electron gas, and nonuniformly-scaled hydrogen atom. We also construct a Laplacian-level meta-GGA for exchange and correlation by employing our approximate in the Tao, Perdew, Staroverov and Scuseria (TPSS) meta-GGA density functional. The Laplacian-level TPSS gives almost the same exchange-correlation enhancement factors and energies as the full TPSS, suggesting that and carry about the same information beyond that carried by and . Our kinetic energy density integrates to an orbital-free kinetic energy functional that is about as accurate as the fourth-order gradient expansion for many real densities (with noticeable improvement in molecular atomization energies), but considerably more accurate for rapidly-varying ones.
Keywords
Cite
@article{arxiv.cond-mat/0612430,
title = {Laplacian-level density functionals for the kinetic energy density and exchange-correlation energy},
author = {John P. Perdew and Lucian A. Constantin},
journal= {arXiv preprint arXiv:cond-mat/0612430},
year = {2015}
}
Comments
9 pages, 16 figures