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用于分子晶体建模和晶体结构预测的、采用原子中心势校正的最小基组哈特里-福克方法

Minimal Basis Set Hartree-Fock Corrected with Atom-Centered Potentials for Molecular Crystal Modeling and Crystal Structure Prediction.

作者信息

Tuca Emilian, DiLabio Gino, Otero-de-la-Roza Alberto

机构信息

Department of Chemistry, University of British Columbia, Okanagan, 3247 University Way, Kelowna V1 V 1 V7, British Columbia, Canada.

Departamento de Química Física y Analítica and MALTA-Consolider Team, Facultad de Química, Universidad de Oviedo, 33006 Oviedo, Spain.

出版信息

J Chem Inf Model. 2022 Sep 12;62(17):4107-4121. doi: 10.1021/acs.jcim.2c00656. Epub 2022 Aug 18.

DOI:10.1021/acs.jcim.2c00656
PMID:35980964
Abstract

Crystal structure prediction (CSP), determining the experimentally observable structure of a molecular crystal from the molecular diagram, is an important challenge with technologically relevant applications in materials manufacturing and drug design. For the purpose of screening the randomly generated candidate crystal structures, CSP protocols require energy ranking methods that are fast and can accurately capture the small energy differences between molecular crystals. In addition, a good ranking method should also produce accurate equilibrium geometries, both intramolecular and intermolecular. In this article, we explore the combination of minimal-basis-set Hartree-Fock (HF) with atom-centered potentials (ACPs) as a method for modeling the structure and energetics of molecular crystals. The ACPs are developed for the H, C, N, and O atoms and fitted to a set of reference data at the B86bPBE-XDM level in order to mitigate basis-set incompleteness and missing correlation. In particular, ACPs are developed in combination with two methods: HF-D3/MINIs and HF-3c. The application of ACPs greatly improves the performance of HF-D3/MINIs for lattice energies, crystal energy differences, energy-volume and energy-strain relations, and crystal geometries. In the case of HF-3c, the improvement in the crystal energy differences is much smaller than in HF-D3/MINIs, but lattice energies and particularly crystal geometries are considerably better when ACPs are used. The resulting methods may be useful for CSP but also for quick calculation of molecular crystal lattice energies and geometries.

摘要

晶体结构预测(CSP),即从分子图确定分子晶体的实验可观测结构,是材料制造和药物设计等技术相关应用中的一项重要挑战。为了筛选随机生成的候选晶体结构,CSP协议需要快速且能准确捕捉分子晶体间小能量差异的能量排序方法。此外,一个好的排序方法还应产生准确的分子内和分子间平衡几何结构。在本文中,我们探索将最小基组Hartree-Fock(HF)与原子中心势(ACP)相结合,作为一种模拟分子晶体结构和能量学的方法。ACP是针对H、C、N和O原子开发的,并在B86bPBE-XDM水平上拟合到一组参考数据,以减轻基组不完整性和缺失相关性的问题。具体而言,ACP是结合两种方法开发的:HF-D3/MINIs和HF-3c。ACP的应用极大地提高了HF-D3/MINIs在晶格能、晶体能量差、能量-体积和能量-应变关系以及晶体几何结构方面的性能。在HF-3c的情况下,晶体能量差的改善比HF-D3/MINIs小得多,但使用ACP时,晶格能尤其是晶体几何结构要好得多。所得方法可能对CSP有用,也可用于快速计算分子晶体的晶格能和几何结构。

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