том 150 издание 15 страницы 154122

A generally applicable atomic-charge dependent London dispersion correction.

Тип публикацииJournal Article
Дата публикации2019-04-19
SCImago Q1
WOS Q1
БС2
SJR0.877
CiteScore5.3
Impact factor3.7
ISSN00219606, 10897690
Physical and Theoretical Chemistry
General Physics and Astronomy
Краткое описание

The so-called D4 model is presented for the accurate computation of London dispersion interactions in density functional theory approximations (DFT-D4) and generally for atomistic modeling methods. In this successor to the DFT-D3 model, the atomic coordination-dependent dipole polarizabilities are scaled based on atomic partial charges which can be taken from various sources. For this purpose, a new charge-dependent parameter-economic scaling function is designed. Classical charges are obtained from an atomic electronegativity equilibration procedure for which efficient analytical derivatives with respect to nuclear positions are developed. A numerical Casimir-Polder integration of the atom-in-molecule dynamic polarizabilities then yields charge- and geometry-dependent dipole-dipole dispersion coefficients. Similar to the D3 model, the dynamic polarizabilities are precomputed by time-dependent DFT and all elements up to radon (Z = 86) are covered. The two-body dispersion energy expression has the usual sum-over-atom-pairs form and includes dipole-dipole as well as dipole-quadrupole interactions. For a benchmark set of 1225 molecular dipole-dipole dispersion coefficients, the D4 model achieves an unprecedented accuracy with a mean relative deviation of 3.8% compared to 4.7% for D3. In addition to the two-body part, three-body effects are described by an Axilrod-Teller-Muto term. A common many-body dispersion expansion was extensively tested, and an energy correction based on D4 polarizabilities is found to be advantageous for larger systems. Becke-Johnson-type damping parameters for DFT-D4 are determined for more than 60 common density functionals. For various standard energy benchmark sets, DFT-D4 slightly but consistently outperforms DFT-D3. Especially for metal containing systems, the introduced charge dependence of the dispersion coefficients improves thermochemical properties. We suggest (DFT-)D4 as a physically improved and more sophisticated dispersion model in place of DFT-D3 for DFT calculations as well as other low-cost approaches like semi-empirical models.

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ГОСТ |
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Caldeweyher E. et al. A generally applicable atomic-charge dependent London dispersion correction. // Journal of Chemical Physics. 2019. Vol. 150. No. 15. p. 154122.
ГОСТ со всеми авторами (до 50) Скопировать
Caldeweyher E., Grimme S., Hansen A., Neugebauer H., Spicher S., Bannwarth C., Grimme S. A generally applicable atomic-charge dependent London dispersion correction. // Journal of Chemical Physics. 2019. Vol. 150. No. 15. p. 154122.
RIS |
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TY - JOUR
DO - 10.1063/1.5090222
UR - https://doi.org/10.1063/1.5090222
TI - A generally applicable atomic-charge dependent London dispersion correction.
T2 - Journal of Chemical Physics
AU - Caldeweyher, Eike
AU - Grimme, Stefan
AU - Hansen, Andreas
AU - Neugebauer, Hagen
AU - Spicher, Sebastian
AU - Bannwarth, Christoph
AU - Grimme, Stefan
PY - 2019
DA - 2019/04/19
PB - AIP Publishing
SP - 154122
IS - 15
VL - 150
PMID - 31005066
SN - 0021-9606
SN - 1089-7690
ER -
BibTex |
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BibTex (до 50 авторов) Скопировать
@article{2019_Caldeweyher,
author = {Eike Caldeweyher and Stefan Grimme and Andreas Hansen and Hagen Neugebauer and Sebastian Spicher and Christoph Bannwarth and Stefan Grimme},
title = {A generally applicable atomic-charge dependent London dispersion correction.},
journal = {Journal of Chemical Physics},
year = {2019},
volume = {150},
publisher = {AIP Publishing},
month = {apr},
url = {https://doi.org/10.1063/1.5090222},
number = {15},
pages = {154122},
doi = {10.1063/1.5090222}
}
MLA
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Caldeweyher, Eike, et al. “A generally applicable atomic-charge dependent London dispersion correction..” Journal of Chemical Physics, vol. 150, no. 15, Apr. 2019, p. 154122. https://doi.org/10.1063/1.5090222.
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