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有效核势在多组态对密度泛函理论中的应用

The Use of Effective Core Potentials with Multiconfiguration Pair-Density Functional Theory.

作者信息

Minnette William E, Hoy Erik P, Sand Andrew M

机构信息

Department of Chemistry and Biochemistry, Butler University, Indianapolis, Indiana 46208, United States.

Department of Chemistry, Rowan University, Glassboro, New Jersey 08028, United States.

出版信息

J Phys Chem A. 2024 Aug 8;128(31):6555-6565. doi: 10.1021/acs.jpca.4c02666. Epub 2024 Jul 25.

Abstract

The reliable and accurate prediction of chemical properties is a key goal in quantum chemistry. Transition-metal-containing complexes can often pose difficulties to quantum mechanical methods for multiple reasons, including many electron configurations contributing to the overall electronic description of the system and the large number of electrons significantly increasing the amount of computational resources required. Often, multiconfigurational electronic structure methods are employed for such systems, and the cost of these calculations can be reduced by the use of an effective core potential (ECP). In this work, we explore both theoretical considerations and performances of ECPs applied in the context of multiconfiguration pair-density functional theory (MC-PDFT). A mixed-basis set approach is used, using ECP basis sets for transition metals and all-electron basis sets for nonmetal atoms. We illustrate the effects that an ECP has on the key parameters used in the computation of MC-PDFT energies, and we explore how ECPs affect the prediction of physical observables for chemical systems. The dissociation curve for a metal dimer was explored, and ionization energies for transition metal-containing diatomic systems were computed and compared to experimental values. In general, we find that ECP approaches employed with MC-PDFT are able to predict ionization energies with improved accuracy compared to traditional Kohn-Sham density functional theory approaches.

摘要

化学性质的可靠且准确预测是量子化学的一个关键目标。含过渡金属的配合物常常因多种原因给量子力学方法带来困难,这些原因包括对体系整体电子描述有贡献的许多电子构型,以及大量电子显著增加了所需的计算资源量。通常,对于此类体系会采用多构型电子结构方法,并且通过使用有效核势(ECP)可以降低这些计算的成本。在这项工作中,我们探讨了在多构型对密度泛函理论(MC-PDFT)背景下应用的ECP的理论考量和性能。我们采用了混合基组方法,对过渡金属使用ECP基组,对非金属原子使用全电子基组。我们阐述了ECP对MC-PDFT能量计算中使用的关键参数的影响,并探讨了ECP如何影响化学体系物理可观测量的预测。我们研究了金属二聚体的解离曲线,并计算了含过渡金属的双原子体系的电离能,并与实验值进行了比较。总体而言,我们发现与传统的科恩-沙姆密度泛函理论方法相比,与MC-PDFT一起使用的ECP方法能够以更高的精度预测电离能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5116/11317981/098cce16e739/jp4c02666_0003.jpg

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