Density-functional thermochemistry. III. The role of exact exchange

Термохимия функционала плотности. III. Роль точного обмена
Axel D. Becke
1993-04-01

atomization energiesexact exchangeexchange-correlation functionalgradient correctionslocal-spin-density
Despite the remarkable thermochemical accuracy of Kohn–Sham density-functional theories with gradient corrections for exchange-correlation [see, for example, A. D. Becke, J. Chem. Phys. 96, 2155 (1992)], we believe that further improvements are unlikely unless exact-exchange information is considered. Arguments to support this view are presented, and a semiempirical exchange-correlation functional containing local-spin-density, gradient, and exact-exchange terms is tested on 56 atomization energies, 42 ionization potentials, 8 proton affinities, and 10 total atomic energies of first- and second-row systems. This functional performs significantly better than previous functionals with gradient corrections only, and fits experimental atomization energies with an impressively small average absolute deviation of 2.4 kcal/mol.
1
A semiempirical exchange-correlation functional combining local-spin-density, gradient, and exact-exchange terms is proposed and tested.
2
Further improvements in thermochemical accuracy of Kohn–Sham DFT with gradient corrections are unlikely without incorporating exact-exchange information.
3
The functional fits experimental atomization energies with an average absolute deviation of 2.4 kcal/mol.
4
The new functional performs significantly better than previous functionals that included only gradient corrections.
5
The proposed functional was evaluated on 56 atomization energies, 42 ionization potentials, 8 proton affinities, and 10 total atomic energies for first- and second-row systems.

Semiempirical exchange-correlation density functional (including local-spin-density, gradient, and exact-exchange terms) applied to first- and second-row atoms and molecules

Impact of incorporating exact-exchange information on thermochemical accuracy (atomization energies, ionization potentials, proton affinities, total atomic energies) of Kohn–Sham density-functional approximations with gradient corrections

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1993-04-01
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Axel D. Becke
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