English

Efficient treatment of local meta-generalized gradient density functionals via auxiliary density expansion: the density fitting (DF) J+X approximation

Chemical Physics 2018-02-07 v2

Abstract

We report an efficient technique to treat density functionals of the meta-generalized gradient approximation (mGGA) class in conjunction with density fitting of Coulomb terms (DF-J) and exchange-correlation terms (DF-X). While the kinetic energy density τ\tau cannot be computed in the context of a DF-JX calculation, we show that the Laplacian of the density υ\upsilon can be computed with almost no extra cost. With this technique, υ\upsilon-form mGGAs become only slightly more expensive (10%--20%) than GGAs in DF-JX treatment---and several times faster than regular τ\tau-based mGGA calculations with DF-J and regular treatment of the density functional. We investigate the translation of υ\upsilon-form mGGAs into τ\tau-form mGGAs by employing a kinetic energy functional, but find this insufficiently reliable at this moment. However, υ\upsilon and τ\tau are believed to carry essentially equivalent information beyond ρ\rho and ρ\Vert\vec\nabla\rho\Vert [Phys. Rev. B 2007, 75, 155109], so a reparametrization of accurate mGGAs from the τ\tau-form into the υ\upsilon-form should be possible. Once such functionals become available, we expect the presented technique to become a powerful tool in the computation of reaction paths, intermediates, and transition states of medium sized molecules.

Keywords

Cite

@article{arxiv.1710.10049,
  title  = {Efficient treatment of local meta-generalized gradient density functionals via auxiliary density expansion: the density fitting (DF) J+X approximation},
  author = {Alyssa V. Bienvenu and Gerald Knizia},
  journal= {arXiv preprint arXiv:1710.10049},
  year   = {2018}
}

Comments

6 pages, 2 figures