A comparative quantum chemical study of the ruthenium catalyzed olefin metathesis
- 18 July 2007
- journal article
- research article
- Published by Wiley in Journal of Computational Chemistry
- Vol. 28 (14) , 2275-2285
- https://doi.org/10.1002/jcc.20709
Abstract
The accurate quantum mechanical description of homogeneous catalysis involving transition‐metal complexes is a complicated and computationally demanding task. Hence, in this study the performance of different quantum chemical approaches with respect to the ruthenium catalyzed olefin metathesis of ethylene and RuCl2(PH3)2CH2 as a model system is investigated. All intermediates and transition states that are relevant for the rate determining steps of competing reaction mechanisms (associative and two dissociative pathways) are considered. Results from density functional theory calculations employing B‐P86, B97‐D, B3‐LYP, TPSSh, and B2‐PLYP functionals, as well as from MP2 and SCS‐MP2 perturbation theory are compared to reference values (relative and reaction energies) obtained at the QCISD(T) level of theory. In particular, the applicability of AO basis sets of increasing size ranging from double‐ζ to quadruple‐ζ quality is evaluated for representative methods. For some reaction steps, large basis set effects on the order of 10 kcal mol−1 (50% of Δ E) are observed. Double‐ζ type basis sets yield very unreliable results while properly polarized triple‐ζ sets provide reaction energies quite close to the basis set limit. The performance of recommended methods is B2‐PLYP>TPSSh>B‐86≈B97‐D>SCS‐MP2. The often used standard approaches B3‐LYP and MP2 provide overall the largest errors. The accurate QCISD(T) computations predict in conclusion (and in agreement with a recent other study) that for the model system considered, the dissociative trans pathway is favored over the dissociative cis pathway and also over the associative reaction mechanism. © 2007 Wiley Periodicals, Inc. J Comput Chem, 2007Keywords
This publication has 92 references indexed in Scilit:
- Experimental and DFT investigation of the 1-octene metathesis reaction mechanism with the Grubbs 1 precatalystJournal of Molecular Catalysis A: Chemical, 2006
- Ursache der hohen Aktivität von Grubbs-Katalysatoren der zweiten GenerationAngewandte Chemie, 2005
- Optimization of parameters for semiempirical methods IV: extension of MNDO, AM1, and PM3 to more main group elementsJournal of Molecular Modeling, 2004
- Ruthenium-Based Four-Coordinate Olefin Metathesis CatalystsAngewandte Chemie, 2000
- The First Grubbs-Type Metathesis Catalyst withcis Stereochemistry: Synthesis of [(η2-dtbpm)Cl2Ru=CH−CH=CMe2] from a Novel, Coordinatively Unsaturated Dinuclear Ruthenium DihydrideChemistry – A European Journal, 1999
- Structure and Bonding of Low-Valent (Fischer-Type) and High-Valent (Schrock-Type) Transition Metal Carbene ComplexesChemistry – A European Journal, 1998
- Ruthenium-Catalyzed Olefin Metathesis: A Quantum Molecular Dynamics StudyJournal of the American Chemical Society, 1998
- Ring-Opening Metathesis. A Ruthenium Catalyst Caught in the ActJournal of the American Chemical Society, 1997
- Binding energies and bond distances of Ni(CO)x, x=1–4: An application of coupled-cluster theoryThe Journal of Chemical Physics, 1991
- Energy-adjustedab initio pseudopotentials for the second and third row transition elementsTheoretical Chemistry Accounts, 1990