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Theoretical Study of Two Possible Side Reactions for Reductive Functionalization of 3d Metal-Methyl Complexes by Hydroxide Ion: Deprotonation and Metal-Methyl Bond Dissociation

机译:氢氧根离子对3d金属-甲基配合物进行还原功能化的两种可能的副反应的理论研究:去质子化和金属-甲基键解离

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A DFT study of two possible competitive reactions for reductive functionalization (RF) of metal methyl complexes ([M-II(diimine)(2)(CH3) (Cl)], M-II = V-II through Cu-II) was performed to understand the factors that lower the selectivity of C-O bond forming reactions. One of the possible side reactions is deprotonation of the methyl group, which leads to formation of a methylene complex and water. The other possible side reaction is metal methyl bond dissociation, which was assessed by calculating the bond dissociation free energies of M-CH3 bonds. Deprotonation was found to be competitive kinetically for most of the first-row transition-metal methyl complexes (except for Cr-II, Mn-II, and Cu-II) but less favorable thermodynamically in comparison to reductive functionalization for all of the studied first-row transition metals. Metal carbon bond dissociation was found to be less favorable than the RF reactions for most 3d transition-metal complexes studied. Therefore, this study suggests that Earth-abundant catalysts for alkane oxidation should focus on chromium-triad metals.
机译:DFT研究了两个可能的金属甲基配合物的还原功能化(RF)竞争反应([M-II(diimine)(2)(CH3)(Cl)],M-II = V-II通过Cu-II)是为了了解降低CO键形成反应选择性的因素,进行了研究。可能的副反应之一是甲基的去质子化,这导致形成亚甲基配合物和水。另一个可能的副反应是金属甲基键解离,通过计算M-CH3键的键解离自由能来评估。发现去质子化对于大多数第一行过渡金属甲基配合物(Cr-II,Mn-II和Cu-II除外)在动力学上具有竞争性,但与还原功能化相比,对所有先研究的人来说,其热力学均较不利。行过渡金属。对于大多数研究的3d过渡金属配合物,发现金属碳键解离的效果不如RF反应好。因此,这项研究表明,丰富的地球烷烃氧化催化剂应集中在三重铬金属上。

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