4.7 Article

Benchmarking of London Dispersion-Accounting Density Functional Theory Methods on Very Large Molecular Complexes

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JOURNAL OF CHEMICAL THEORY AND COMPUTATION
卷 9, 期 3, 页码 1580-1591

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AMER CHEMICAL SOC
DOI: 10.1021/ct301081n

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  1. Fonds der Chemischen Industrie
  2. International NRW Graduate School of Chemistry

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A new test set (S12L) containing 12 supramolecular noncovalently bound complexes is presented and used to evaluate seven different methods to account for dispersion in DFT (DFT-D3, DFT-D2, DFT-NL, XDM, dDsC, TS-vdW, M06-L) at different basis set levels against experimental, back-corrected reference energies. This allows conclusions about the performance of each method in an explorative research setting on real-life problems. Most DFT methods show satisfactory performance but, due to the largeness of the complexes, almost always require an explicit correction for the nonadditive Axilrod-Teller-Muto three-body dispersion interaction to get accurate results. The necessity of using a method capable of accounting for dispersion is clearly demonstrated in that the two-body dispersion contributions are on the order of 20-150% of the total interaction energy. MP2 and some variants thereof are shown to be insufficient for this while a few tested D3-corrected semiempirical MO methods perform reasonably well. Overall, we suggest the use of this benchmark set as a sanity check against overfitting to too small molecular cases.

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