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XO-PBC: An Accurate and Efficient Method for Molecular Crystals

机译:XO-PBC:用于分子晶体的准确有效的方法

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摘要

In this work, we propose the XO-PBC method, which combines the eXtended ONIOM method (XO) with the periodic boundary condition (PBC) for the description of molecular crystals. XO-PBC tries to embed a finite cluster cut out from the solid into the periodic environment, making it feasible to employ advanced molecular quantum chemistry methods, which are usually prohibitively expensive for direct PBC calculations. In particular, XO-PBC utilizes the results from force calculations to design the scheme to fragment the molecule when crystals are made of large molecules and to select cluster model systems automatically consisting of dimer up to tetramer interactions for embedding. By applying an appropriate theory to each model, a satisfactory accuracy for the system under study is ensured, while a high efficiency is achieved with massively parallel computing by distributing model systems onto different processors. A comparison of the XO-PBC calculations with the conventional direct PBC calculations at the B3LYP level demonstrates its accuracy at substantially low cost for the description of molecular crystals. The usefulness of the XO-PBC method is further exemplified, showing that XO-PBC is able to predict the lattice energies of various types of molecular crystals within chemical accuracy (<4 kJ/mol) when the doubly hybrid density functional XYG3 is used as the target high level and the periodic PBE as the basic low level. The XO-PBC method provides a general protocol that brings the great predictive power of advanced electronic structure methods from molecular systems to the extended solids.
机译:在这项工作中,我们提出了将XO-PBC方法与周期性边界条件(PBC)结合起来,用于分子晶体的描述。 XO-PBC试图将从固体切割出来的有限簇嵌入周期性环境中,使得采用先进的分子量化学方法,这通常是对直接PBC计算的预付款。特别地,XO-PBC利用力计算的结果来设计当晶体由大分子制成时将分子片段分子进行分离,并选择基于二聚体的聚类模型系统,从而嵌入的四聚物相互作用。通过将适当的理论应用于每个模型,确保了在研究中的系统的令人满意的精度,而通过将模型系统分配到不同的处理器上,通过大规模平行计算来实现高效率。在B3LYP水平下与传统直接PBC计算的XO-PBC计算的比较以基本上低成本的分子晶体的成本基本上低成本。进一步举例说明了XO-PBC方法的有用性,显示XO-PBC能够在使用双杂化密度官能XYG3作为化学精度(<4kJ / mol)内的各种分子晶体的晶格能量。目标高水平和周期性的pbe作为基本低水平。 XO-PBC方法提供了一种通用协议,将先进的电子结构方法从分子系统到延伸固体带来了极大的预测力。

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  • 作者

    Bozhu Chen; Xin Xu;

  • 作者单位

    Collaborative Innovation Center of Chemistry for Energy Materials Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials Ministry of Education Key Laboratory of Computational Physical Sciences Department of Chemistry Fudan University;

    Collaborative Innovation Center of Chemistry for Energy Materials Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials Ministry of Education Key Laboratory of Computational Physical Sciences Department of Chemistry Fudan University;

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  • 正文语种 eng
  • 中图分类 化学键的量子力学理论;化学;
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