Accurate estimates of intermolecular interaction energy, ÎE, are crucial for modeling the properties of organic electronic materials and many other systems. For a diverse set of 50 dimers comprising up to 50 atoms (Set50-50, with 7 of its members being models of single-stacking junctions), benchmark ÎE data were compiled. They were obtained by the focal-point strategy, which involves computations using the canonical variant of the coupled cluster theory with singles, doubles, and perturbative triples [CCSD(T)] performed while applying a large basis set, along with extrapolations of the respective energy components to the complete basis set (CBS) limit. The resulting ÎE data were used to gauge the performance for the Set50-50 of several density-functional theory (DFT)-based approaches, and of one of the localized variants of the CCSD(T) method. This evaluation revealed that (1) the proposed "silver standard" approach, which employs the localized CCSD(T) method and CBS extrapolations, can be expected to provide accuracy better than two kJ/mol for absolute values of ÎE, and (2) from among the DFT techniques, computationally by far the cheapest approach (termed "ÏB97X-3c/vDZP" by its authors) performed remarkably well. These findings are directly applicable in cost-effective yet reliable searches of the potential energy surfaces of noncovalent complexes.
Reliable Dimerization Energies for Modeling of Supramolecular Junctions.
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作者:Czernek JiÅÃ, Brus JiÅÃ
| 期刊: | International Journal of Molecular Sciences | 影响因子: | 4.900 |
| 时间: | 2024 | 起止号: | 2024 Jan 2; 25(1):602 |
| doi: | 10.3390/ijms25010602 | ||
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