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How Solvent Affects C–H Activation and HydrogenProduction Pathways in Homogeneous Ru-Catalyzed Methanol DehydrogenationReactions

机译:溶剂如何影响C–H活化和氢均相Ru催化甲醇脱氢的生产途径。反应

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摘要

Insights into the mechanism of the catalytic cycle for methanol dehydrogenation catalyzed by a highly active PNP pincer ruthenium complex in methanol solvent are presented, using DFT-based molecular dynamics with an explicit description of the solvent, as well as static DFT calculations using microsolvation models. In contrast to previous results, we find the amido moiety of the catalyst to be permanently protonated under catalytic conditions. Solvent molecules actively participate in crucial reaction steps and significantly affect the reaction barriers when compared to pure gas-phase models, which is a direct result of the enhanced solvent stabilization of methoxide anion intermediates. Further, the calculations reveal that this system does not operate via the commonly assumed Noyori-type outer-sphere metal–ligand cooperative pathway. Our results show the importance of incorporating a molecular description of the solvent to gain a deeper and accurate understanding of the reaction pathways, and stress on the need to involve explicit solvent molecules to model complexcatalytic processes in a realistic manner.
机译:使用基于DFT的分子动力学以及对溶剂的明确描述,以及使用微溶剂模型的静态DFT计算,对由甲醇中的高活性PNP钳形钌络合物催化的甲醇脱氢催化循环的机理进行了深入了解。与以前的结果相反,我们发现催化剂的酰胺基部分在催化条件下被永久质子化。与纯气相模型相比,溶剂分子积极参与关键的反应步骤,并显着影响反应壁垒,这是甲醇盐阴离子中间体的增强溶剂稳定性的直接结果。此外,计算结果表明,该系统不能通过通常假定的Noyori型外球金属-配体协同途径进行操作。我们的结果表明,必须结合溶剂的分子描述来更深入,准确地了解反应路径,并强调需要使用明确的溶剂分子来模拟复杂化合物的重要性。以现实的方式进行催化过程。

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