Issue 11, 2014

Mechanistic insights into B–H bond activation with the high-valent oxo-molybdenum complex MoO2Cl2

Abstract

The B–H bond activation and the catalytic hydroboration of carbonyl compounds by the high-valent oxo-molybdenum complex MoO2Cl2 were theoretically investigated to determine the underlying mechanism. Our calculation results indicate an unique path – the ionic mechanistic pathway involving the heterolytic cleavage of the B–H bond competes with the [2+2] addition pathway, which involves the addition of the B–H bond across one of the Mo[double bond, length as m-dash]O bonds. The rate-determining free energy barriers for the ionic mechanistic pathway are calculated to be 26.9 kcal mol−1, 25.0 kcal mol−1 and 23.7 kcal mol−1 for diphenylketone, benzaldehyde and acetophenone, respectively. These values are energetically slightly favorable than the [2+2] addition mechanism by ∼1–3 kcal mol−1. Furthermore, it is worth noting that the carbonyl compounds bearing the electron donation group will induce a better activity toward the ionic mechanistic pathway.

Graphical abstract: Mechanistic insights into B–H bond activation with the high-valent oxo-molybdenum complex MoO2Cl2

Supplementary files

Article information

Article type
Paper
Submitted
17 Jul 2014
Accepted
31 Aug 2014
First published
01 Sep 2014

New J. Chem., 2014,38, 5421-5428

Author version available

Mechanistic insights into B–H bond activation with the high-valent oxo-molybdenum complex MoO2Cl2

L. Huang and H. Wei, New J. Chem., 2014, 38, 5421 DOI: 10.1039/C4NJ01188K

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