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Ligand Lone-Pair Influence on Hydrocarbon C-H Activation: A Computational Perspective

Daniel H. Ess, T. Brent Gunnoe, Thomas R. Cundari, William A. Goddard III, Roy A. Periana

2010Organometallics, 29(24), 6801-681558cited

Abstract

Mid to late transition metal complexes that break hydrocarbon C-H bonds by transferring the hydrogen to a heteroatom ligand while forming a metal-alkyl bond offer a promising strategy for C-H activation. Here we report a density functional (B3LYP, M06, and X3LYP) analysis of cis-(acac)_2MX and TpM(L)X (M=Ir, Ru, Os, and Rh; acac=acetylacetonate, Tp=tris(pyrazolyl)-borate; X=CH_3, OH, OMe, NH_2, and NMe_2) systems for methane C-H bond activation reaction kinetics and thermodynamics.We address the importance of whether a ligand lone pair provides an intrinsic kinetic advantage through possible electronic d_π-p_π repulsions for M-OR and M-NR_2 systems versus M-CH_3 systems. This involves understanding the energetic impact of the X ligand group on ligand loss, C-H bond coordination, and C-H bond cleavage steps as well as understanding how the nucleophilicity of the ligand X group, the electrophilicity of the transition metal center, and cis-ligand stabilization effect influence each of these steps.We also explore how spectator ligands and second- versus third-row transition metal centers impact the energetics of each of these C-H activation steps.

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Cite this publication
Ess, D. H., Gunnoe, T. B., Cundari, T. R., III, W. A. G., & Periana, R. A. (2010). Ligand Lone-Pair Influence on Hydrocarbon C-H Activation: A Computational Perspective. *Organometallics*, *29*(24), 6801-6815. https://doi.org/10.1021/om100974q