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分子晶体中的非共价相互作用:用局域轨道探讨交换空穴偶极矩模型的准确性。

Non-Covalent Interactions in Molecular Crystals: Exploring the Accuracy of the Exchange-Hole Dipole Moment Model with Local Orbitals.

机构信息

Department of Chemistry , Dalhousie University , 6274 Coburg Road , Halifax , Nova Scotia B3H 4R2 , Canada.

Departamento de Quı́mica Fı́sica y Analı́tica, Facultad de Quı́mica , Universidad de Oviedo , 33006 Oviedo , Spain.

出版信息

J Chem Theory Comput. 2018 Nov 13;14(11):5715-5724. doi: 10.1021/acs.jctc.8b00797. Epub 2018 Oct 23.

Abstract

We present the first implementation of the exchange-hole dipole moment (XDM) model in combination with a numerical finite-support local orbital method (the SIESTA method) for the modeling of non-covalent interactions in periodic solids. The XDM model is parametrized for both the B86bPBE and PBE functionals using double-ζ- and triple-ζ-quality basis sets (DZP and TZP). The use of finite-support local orbitals is shown to have minimal impact on the computed dispersion coefficients for van der Waals molecular dimers and small molecular solids. However, the quality of the basis set affects the accuracy of calculated dimer binding energies and molecular-crystal lattice energies quite significantly; the size of the counterpoise correction indicates that this is caused by basis-set incompleteness error. In the case of the DZP basis set, its performance for weakly bound gas-phase dimers is similar to that of a double-ζ Gaussian basis set without diffuse functions. The new XDM implementation was tested on graphite and phosphorene exfoliation, and on the X23 benchmark set of molecular-crystal lattice energies. Our results indicate that lattice energies similar to plane-wave calculations can be obtained only if the counterpoise correction is applied. Alternatively, the calculated equilibrium geometries are reasonably close to the plane-wave equivalents, and composite approaches in which a single-point plane-wave calculation is used at the XDM/DZP equilibrium geometry yield good accuracy at a significantly lower computational cost.

摘要

我们首次实现了交换空穴偶极矩(XDM)模型与数值有限支撑局域轨道方法(SIESTA 方法)的结合,用于模拟周期性固体中的非共价相互作用。XDM 模型针对 B86bPBE 和 PBE 泛函进行了参数化,使用了双 ζ 和三 ζ 质量基组(DZP 和 TZP)。使用有限支撑局域轨道对范德华分子二聚体和小分子固体的计算色散系数的影响最小。然而,基组的质量对计算二聚体结合能和分子晶体晶格能的准确性有很大的影响;虚位对校正的大小表明这是由于基组不完备误差引起的。在 DZP 基组的情况下,它对弱束缚气相二聚体的性能类似于没有弥散函数的双 ζ 高斯基组。新的 XDM 实现已经在石墨和磷烯剥落以及 X23 分子晶体晶格能基准集上进行了测试。我们的结果表明,只有应用虚位对校正,才能获得类似于平面波计算的晶格能。或者,计算得到的平衡几何形状与平面波等效物相当接近,并且在 XDM/DZP 平衡几何形状处使用单点平面波计算的组合方法可以以显著降低的计算成本获得良好的准确性。

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