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完全基组外推、高度相关非共价相互作用能的逼近。

Approximations to complete basis set-extrapolated, highly correlated non-covalent interaction energies.

机构信息

National Institute for Nanotechnology, 11421 Saskatchewan Drive, Edmonton, Alberta T6G 2M9, Canada.

出版信息

J Chem Phys. 2011 Oct 7;135(13):134318. doi: 10.1063/1.3643839.

Abstract

The first-principles calculation of non-covalent (particularly dispersion) interactions between molecules is a considerable challenge. In this work we studied the binding energies for ten small non-covalently bonded dimers with several combinations of correlation methods (MP2, coupled-cluster single double, coupled-cluster single double (triple) (CCSD(T))), correlation-consistent basis sets (aug-cc-pVXZ, X = D, T, Q), two-point complete basis set energy extrapolations, and counterpoise corrections. For this work, complete basis set results were estimated from averaged counterpoise and non-counterpoise-corrected CCSD(T) binding energies obtained from extrapolations with aug-cc-pVQZ and aug-cc-pVTZ basis sets. It is demonstrated that, in almost all cases, binding energies converge more rapidly to the basis set limit by averaging the counterpoise and non-counterpoise corrected values than by using either counterpoise or non-counterpoise methods alone. Examination of the effect of basis set size and electron correlation shows that the triples contribution to the CCSD(T) binding energies is fairly constant with the basis set size, with a slight underestimation with CCSD(T)∕aug-cc-pVDZ compared to the value at the (estimated) complete basis set limit, and that contributions to the binding energies obtained by MP2 generally overestimate the analogous CCSD(T) contributions. Taking these factors together, we conclude that the binding energies for non-covalently bonded systems can be accurately determined using a composite method that combines CCSD(T)∕aug-cc-pVDZ with energy corrections obtained using basis set extrapolated MP2 (utilizing aug-cc-pVQZ and aug-cc-pVTZ basis sets), if all of the components are obtained by averaging the counterpoise and non-counterpoise energies. With such an approach, binding energies for the set of ten dimers are predicted with a mean absolute deviation of 0.02 kcal/mol, a maximum absolute deviation of 0.05 kcal/mol, and a mean percent absolute deviation of only 1.7%, relative to the (estimated) complete basis set CCSD(T) results. Use of this composite approach to an additional set of eight dimers gave binding energies to within 1% of previously published high-level data. It is also shown that binding within parallel and parallel-crossed conformations of naphthalene dimer is predicted by the composite approach to be 9% greater than that previously reported in the literature. The ability of some recently developed dispersion-corrected density-functional theory methods to predict the binding energies of the set of ten small dimers was also examined.

摘要

第一性原理计算分子间的非共价(特别是色散)相互作用是一项艰巨的挑战。在这项工作中,我们研究了十个小分子非共价键二聚体的结合能,这些二聚体采用了几种组合的相关方法(MP2、耦合簇单双、耦合簇单双(三重)(CCSD(T)))、相关一致基组(aug-cc-pVXZ,X=D、T、Q)、两点完全基组能量外推和缀加校正。对于这项工作,完全基组的结果是通过从 aug-cc-pVQZ 和 aug-cc-pVTZ 基组的外推中获得的平均缀加和非缀加校正的 CCSD(T)结合能来估计的。结果表明,在几乎所有情况下,通过平均缀加和非缀加校正的值,结合能比单独使用缀加或非缀加方法更快地收敛到基组极限。考察基组大小和电子相关的影响表明,三重贡献对于 CCSD(T)结合能的贡献随着基组大小的增加而基本保持不变,与(估计)完全基组极限相比,CCSD(T)∕aug-cc-pVDZ 略有低估,而 MP2 得到的结合能贡献通常高估了类似的 CCSD(T)贡献。综合这些因素,我们得出结论,如果所有的成分都是通过平均缀加和非缀加的能量来获得的,那么使用 CCSD(T)∕aug-cc-pVDZ 与通过基组外推 MP2 获得的能量校正相结合的组合方法,可以准确地确定非共价键体系的结合能(利用 aug-cc-pVQZ 和 aug-cc-pVTZ 基组)。对于十个二聚体的集合,使用这种方法预测的结合能的平均绝对偏差为 0.02 kcal/mol,最大绝对偏差为 0.05 kcal/mol,平均绝对偏差仅为 1.7%,相对于(估计)完全基组 CCSD(T)的结果。将这种组合方法应用于另外八个二聚体的集合,得到的结合能与之前发表的高精度数据相差在 1%以内。结果还表明,萘二聚体的平行和平行交叉构象的结合能,通过组合方法预测比文献中之前报道的要高 9%。最近开发的一些色散校正密度泛函理论方法预测这十个小分子二聚体集合的结合能的能力也得到了检验。

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