Dispersion Corrected Hartree-Fock and Density Functional Theory for Organic Crystal Structure Prediction

被引:116
作者
Brandenburg, Jan Gerit [1 ]
Grimme, Stefan [1 ]
机构
[1] Univ Bonn, Inst Phys & Theoret Chem, Mulliken Ctr Theoret Chem, D-53115 Bonn, Germany
来源
PREDICTION AND CALCULATION OF CRYSTAL STRUCTURES: METHODS AND APPLICATIONS | 2014年 / 345卷
关键词
Counterpoise correction; Crystal structure prediction; Density Functional Theory; Dispersion correction; Hartree-Fock; ZETA-VALENCE QUALITY; GAUSSIAN-BASIS SETS; AB-INITIO; INTERMOLECULAR FORCES; PERFORMANCE; ENERGIES; THERMOCHEMISTRY; POTENTIALS; ADSORPTION; COMPLEXES;
D O I
10.1007/128_2013_488
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We present and evaluate dispersion corrected Hartree-Fock (HF) and Density Functional Theory (DFT) based quantum chemical methods for organic crystal structure prediction. The necessity of correcting for missing long-range electron correlation, also known as van der Waals (vdW) interaction, is pointed out and some methodological issues such as inclusion of three-body dispersion terms are discussed. One of the most efficient and widely used methods is the semi-classical dispersion correction D3. Its applicability for the calculation of sublimation energies is investigated for the benchmark set X23 consisting of 23 small organic crystals. For PBE-D3 the mean absolute deviation (MAD) is below the estimated experimental uncertainty of 1.3 kcal/mol. For two larger pi-systems, the equilibrium crystal geometry is investigated and very good agreement with experimental data is found. Since these calculations are carried out with huge plane-wave basis sets they are rather time consuming and routinely applicable only to systems with less than about 200 atoms in the unit cell. Aiming at crystal structure prediction, which involves screening of many structures, a pre-sorting with faster methods is mandatory. Small, atom-centered basis sets can speed up the computation significantly but they suffer greatly from basis set errors. We present the recently developed geometrical counterpoise correction gCP. It is a fast semi-empirical method which corrects for most of the inter- and intramolecular basis set superposition error. For HF calculations with nearly minimal basis sets, we additionally correct for short-range basis incompleteness. We combine all three terms in the HF-3c denoted scheme which performs very well for the X23 sublimation energies with an MAD of only 1.5 kcal/mol, which is close to the huge basis set DFT-D3 result.
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页码:1 / 23
页数:23
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