Computed versus experimental energy barriers in solution: Influence of the type of the density functional approximation.

J Comput Chem

Universite Claude Bernard Lyon I, CNRS, CPE-Lyon, INSA-Lyon, UMR 5246, ICBMS Institut de Chimie et de Biochimie Moléculaires et Supramoléculaires, Villeurbanne, France.

Published: October 2024

AI Article Synopsis

  • Mechanistic studies using density functional theory (DFT) for organic and organometallic reactions in solution are now common and complement experimental work.
  • The initial challenge in this approach is selecting the right DFT functional for accurate energy barrier calculations, with evaluations made on both non-empirical (like PBE and PBE0) and empirical functionals (like BLYP and B3LYP).
  • General findings indicate that non-empirical functionals tend to perform better than empirical ones, with PBE0 and PBE0-DH yielding the most accurate results for energy barriers, while adding GD3-BJ dispersion correction doesn't improve accuracy.

Article Abstract

Mechanistic investigations at the density functional theory level of organic and organometallic reactions in solution are now broadly accessible and routinely implemented to complement experimental investigations. The selection of an appropriate functional among the plethora of developed ones is the first challenge on the way to reliable energy barrier calculations. To provide guidelines for the choice of an initial and reliable computational level, the performances of commonly used non-empirical (PBE, PBE0, PBE0-DH) and empirical density functionals (BLYP, B3LYP, B2PLYP) were evaluated relative to experimental activation enthalpies. Most reactivity databases to assess density functional performances are primarily based on high level calculations, here a set of experimental activation enthalpies of organic and organometallic reactions performed in solution were selected from the literature. As a general trend, the non-empirical functionals outperform the empirical ones. The most accurate energy barriers are obtained with hybrid PBE0 and double-hybrid PBE0-DH density functionals, both providing similar performance. Regardless of the functional under consideration, the addition of the GD3-BJ empirical dispersion correction does not enhance the accuracy of computed energy barriers.

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Source
http://dx.doi.org/10.1002/jcc.27436DOI Listing

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