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Mechanisms of the Water-Gas Shift Reaction Catalyzed by Carbonyl Complexes Mo(CO)(6) and Mo-2(CO)(10): A Density Functional Theory Study

机译:Mechanisms of the Water-Gas Shift Reaction Catalyzed by Carbonyl Complexes Mo(CO)(6) and Mo-2(CO)(10): A Density Functional Theory Study

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摘要

Four different mechanistic pathways for Mo(CO)(6) and a reaction mechanism for the binuclear species Mo-2(CO)(10) catalyzed water-gas shift reaction (WGSR) have been analyzed using density functional method. It turned out that the binuclear catalyst provides more facile transformations through lower barriers in comparison to the mononuclear catalyst, which is explained by the metal-metal cooperativity between the two Mo centers. The energy span model indicates that the higher the TOF calculated, the faster the catalytic rate and the higher the catalytic efficiency. The bimetallic catalyst (Mo-2(CO)(10)) with the highest value of the calculated TOF (2.60 x 10(-15) s(-1)), which is higher than that of Fe-2(CO)(9) (8.96 x 10(-20) s(-1)) (see Kuriakose et al. in Inorg Chem 51: 377, 2012). The later prove the WGSR catalyst with high performance. Our conclusions will be useful for the design of improved WGSR catalysts in the future.
机译:采用密度泛函方法分析了Mo(CO)(6)的4种不同机理途径和双核Mo-2(CO)(10)催化水-气变换反应(WGSR)的反应机理.事实证明,与单核催化剂相比,双核催化剂通过更低的势垒提供了更方便的转化,这可以通过两个钼中心之间的金属-金属协同性来解释。能量跨度模型表明,计算的TOF越高,催化速率越快,催化效率越高。双金属催化剂(Mo-2(CO)(10))的TOF计算值最高(2.60×10(-15)s(-1)),高于Fe-2(CO)(9)(8.96×10(-20)s(-1))(参见Kuriakose等人在Inorg Chem 51:377,2012)。后者证明了WGSR催化剂的高性能。研究结果对未来改进WGSR催化剂的设计具有一定的参考价值。

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