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

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

Research output: Contribution to journalArticlepeer-review

6 Scopus citations

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 De and bond length re 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 M 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 De and re 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.

Original languageEnglish (US)
Pages (from-to)9757-9770
Number of pages14
JournalJournal of Physical Chemistry A
Volume124
Issue number47
DOIs
StatePublished - Nov 25 2020

Bibliographical note

Funding Information:
The Wilson group is thanked for useful engagement and discussion in this effort as well as comments on the manuscript. J.L.B. acknowledges the financial support provided by Boston College start-up funding. A.K.W. was supported in part by the National Science Foundation under grant no. CHE-1900086. D.G.T. was supported in part by the U.S. Department of Energy, Office of Basic Energy Sciences, Division of Chemical Sciences, under award DE-SC0012702 (Inorganometallic Catalyst Design Center).

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