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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Aerobic oxidation of methanol to formic acid on Au_(20) ~-: a theoretical study on the reaction mechanism
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Aerobic oxidation of methanol to formic acid on Au_(20) ~-: a theoretical study on the reaction mechanism

机译:Au_(20)〜-上甲醇的好氧氧化为甲酸:反应机理的理论研究

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摘要

The aerobic oxidation of methanol to formic acid catalyzed by Au_(20)~- has been investigated quantum chemically using density functional theory with the M06 functional. Possible reaction pathways are examined taking account of full structure relaxation of the Au_(20)~- cluster. The proposed reaction mechanism consists of three elementary steps: (1) formation of formaldehyde from methoxy species activated by a superoxo-like anion on the gold cluster; (2) nucleophilic addition by the hydroxyl group of a hydroperoxyl-like complex to formaldehyde resulting in a hemiacetal intermediate; and (3) formation of formic acid by hydrogen transfer from the hemiacetal intermediate to atomic oxygen attached to the gold cluster. A comparison of the computed energetics of various elementary steps indicates that C-H bond dissociation of the methoxy species leading to formation of formaldehyde is the rate-determining step. A possible reaction pathway involving single-step hydrogen abstraction, a concerted mechanism, is also discussed. The stabilities of reactants, intermediates and transition state structures are governed by the coordination number of the gold atoms, charge distribution, cooperative effect and structural distortion, which are the key parameters for understanding the relationship between the structure of the gold cluster and catalytic activity in the aerobic oxidation of alcohols.
机译:利用具有M06功能的密度泛函理论,对Au_(20)〜-催化的甲醇好氧氧化为甲酸进行了量子化学研究。考虑到Au_(20)〜-团簇的完整结构弛豫,研究了可能的反应途径。所提出的反应机理包括三个基本步骤:(1)由被金簇上的超氧样阴离子活化的甲氧基形成甲醛。 (2)通过氢过氧化物样复合物的羟基的亲核加成反应形成甲醛,得到半缩醛中间体。 (3)通过氢从半缩醛中间体转移到附着在金簇上的原子氧而形成甲酸。各种基本步骤的计算出的能量学的比较表明,导致甲醛形成的甲氧基物质的C-H键离解是决定速率的步骤。还讨论了涉及单步氢提取的协同反应的可能反应途径。反应物,中间体和过渡态结构的稳定性受金原子的配位数,电荷分布,协同作用和结构变形的支配,这是了解金簇结构与催化活性之间关系的关键参数。酒精的有氧氧化。

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