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Mechanistic insights into catalytic CO2 hydrogenation using Mn(I)-complexes with pendant oxygen ligands

机译:机械的见解催化二氧化碳加氢使用Mn (I)复合物和垂饰氧配体

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With the aid of density functional theory calculations, we have elucidated the mechanism of the catalytic hydrogenation of CO2 to formate using the recently reported dihydroxybipyridine-based Mn.I)-complex. Plausible catalytic pathways are unravelled thoroughly and the computational results account for the experimental findings. The critical roles of an external base additive and pendant hydroxyl groups, as active participants in the hydrogenation process, are examined in detail. The overall mechanism includes two main steps; heterolytic dihydrogen cleavage and hydride transfer to CO2. The initial hydrogen splitting step is assisted by the external base. Pendant oxygen atoms take part neither in the hydrogen cleavage nor directly during the subsequent hydride transfer. Nevertheless, their presence is crucial for the hydrogenation reactivity of the catalyst as they have an indirect effect in determining the feasibility of the final hydride transfer step. Furthermore, guided by detailed mechanistic understanding, we have proposed a series of Mn.I)-complexes based on an acylmethylpyridinol ligand for catalysing the hydrogenation of CO2 to formic acid.
机译:用密度泛函理论的援助计算,我们已经阐明的机理甲酸的催化加氢的二氧化碳使用最近报道dihydroxybipyridine-based Mn.I)复杂。似是而非的催化途径瓦解彻底和计算结果的实验结果。外部基础添加剂和吊坠羟基团体,积极的参与者加氢过程,详细检查。整体机制包括两个主要步骤;二氢异属溶解的乳沟和氢化转移到二氧化碳。一步是由外部辅助基地。氧原子都参加的氢在随后的乳沟也直接氢化物转移。的加氢反应的关键催化剂的间接影响确定最终的氢化物的可行性转移步骤。机械的理解,我们已经提出了一个基于一个系列Mn.I)复合物acylmethylpyridinol配体催化二氧化碳加氢甲酸。

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