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预测配位不饱和钒-配体键的键解离能和键长。

Predicting Bond Dissociation Energies and Bond Lengths of Coordinatively Unsaturated Vanadium-Ligand Bonds.

作者信息

Bao Junwei Lucas, Welch Bradley K, Ulusoy Inga S, Zhang Xin, Xu Xuefei, Wilson Angela K, Truhlar Donald G

机构信息

Department of Chemistry, Boston College, Chestnut Hill, Massachusetts 02467, United States.

Department of Chemistry, Michigan State University, 578 S Shaw Lane, East Lansing, Michigan 48824-1322, United States.

出版信息

J Phys Chem A. 2020 Nov 25;124(47):9757-9770. doi: 10.1021/acs.jpca.0c06519. Epub 2020 Nov 12.

Abstract

Understanding the electronic structure of coordinatively unsaturated transition-metal compounds and predicting their physical properties are of great importance for catalyst design. Bond dissociation energy and bond length are two of the fundamental quantities for which good predictions are important for a successful design strategy. In the present work, recent experimentally measured bond energies and bond lengths of VX diatomic molecules (X = C, N, S) are used as a gauge to consider the utility of a number of electronic structure methods. Single-reference methods are one focus because of their efficiency and utility in practical calculations, and multireference configuration interaction (MRCISD) methods and a composite coupled cluster (CCC) method are a second focus because of their potential high accuracy. The comparison is especially challenging because of the large multireference diagnostics of these molecules, in the range 0.15-0.19. For the single-reference methods, Kohn-Sham density functional theory (KS-DFT) has been tested with a variety of approximate exchange-correlation functionals. Of these, MOHLYP provides the bond dissociation energies in best agreement with experiments, and BLYP provides the bond lengths that are in best agreement with experiments; but by requiring good performance for both the and of the vanadium compounds, MOHLYP, MN12-L, MGGA_MS1, MGGA_MS0, O3LYP, and M06-L are the most highly recommended functionals. The CCC calculations include up to connected pentuple excitations for the valence electrons and up to connected quadruple excitations for the core-valence terms; this results in highly accurate dissociation energies and good bond lengths. Averaged over the three molecules, the mean unsigned deviation of CCC bond energies from experimental ones is only 0.4 kcal/mol, demonstrating excellent convergence of theory and experiments.

摘要

理解配位不饱和过渡金属化合物的电子结构并预测其物理性质对于催化剂设计至关重要。键解离能和键长是两个基本量,对于成功的设计策略而言,对它们进行准确预测非常重要。在本工作中,最近通过实验测量的VX双原子分子(X = C、N、S)的键能和键长被用作衡量多种电子结构方法实用性的标准。单参考方法是一个重点,因为它们在实际计算中具有效率和实用性;多参考组态相互作用(MRCISD)方法和复合耦合簇(CCC)方法是另一个重点,因为它们具有潜在的高精度。由于这些分子具有较大的多参考诊断值,范围在0.15 - 0.19之间,因此这种比较特别具有挑战性。对于单参考方法,已使用各种近似交换相关泛函对Kohn-Sham密度泛函理论(KS-DFT)进行了测试。其中,MOHLYP给出的键解离能与实验结果最吻合,BLYP给出的键长与实验结果最吻合;但通过要求钒化合物的键能和键长都有良好表现,MOHLYP、MN12-L、MGGA_MS1、MGGA_MS0、O3LYP和M06-L是最值得推荐的泛函。CCC计算包括对价电子的多达连接五重激发和对芯价项的多达连接四重激发;这导致了高精度的解离能和良好的键长。在这三个分子上进行平均,CCC键能与实验值的平均绝对偏差仅为0.4 kcal/mol,表明理论和实验具有出色的一致性。

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