首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Mechanistic Insight into the Styrene-Selective Oxidation on Subnanometer Gold Clusters (Au_(16)-Au_(20), Au_(27), Au_(28), Au_(30), and Au_(32)-Au_(35)): A Density Functional Theory Study
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Mechanistic Insight into the Styrene-Selective Oxidation on Subnanometer Gold Clusters (Au_(16)-Au_(20), Au_(27), Au_(28), Au_(30), and Au_(32)-Au_(35)): A Density Functional Theory Study

机译:对亚纳米金簇(Au_(16)-Au_(20),Au_(27),Au_(28),Au_(30)和Au_(32)-Au_(35)上的苯乙烯选择性氧化的机理的了解:密度泛函理论研究

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We performed a comprehensive study of the reaction mechanism of styrene-selective oxidation to benzal-dehye and styrene epoxide on subnanometer gold clusters with the cluster size ranges from around 0.4 to 1.0 nm via the density functional theory (DFT) calculation. The major focuses of the current study are the intrinsic catalytic selectivity and size-dependent activities of gold clusters toward styrene oxidations. The reaction selectivity of styrene oxidation over subnanometer gold clusters, e.g., selective formation to benzaldehyde or styrene epoxide, with the presence of . dioxygen as the sole oxidant or the H2/O2 mixture as the reactant is discussed. A new reaction channel leading to the formation of a benzaldehyde product involving the formation of a metastable four-membered ring CCOO* intermediate is proposed, which explains the recent experimental observations of a high yield of benzaldehyde on ~1.4 nm gold clusters. The effect of the charge state of gold clusters on the reaction selectivity and reaction rate is examined. The results indicated that the reaction selectivity is not affected by the charge state of the cluster by using the Au_(34)~- cluster as a benchmark model. However, the reaction rate of styrene oxidation is significantly increased on the anionic gold clusters caused by larger O2 adsorption energies, suggesting higher catalytic activity of anionic clusters. The mechanism of dramatic increase of product selectivity to styrene epoxide using H2 as the additive is explored as well. We find that the major role of the H2 additive is facilitating the dissociation of O2 into an active O atom on subnanometer gold clusters, which leads to high selectivity to the epoxide product. This systematic study enables a quantitative assessment of the size-dependent activity and selectivity of subnanometer gold clusters toward styrene-selective oxidation.
机译:我们通过密度泛函理论(DFT)计算,对簇大小在0.4至1.0 nm左右的亚纳米金簇上的苯乙烯选择性氧化为苯甲醛和苯乙烯环氧化物的反应机理进行了全面研究。当前研究的主要重点是金簇对苯乙烯氧化的内在催化选择性和尺寸依赖性活性。苯乙烯在亚纳米金簇上的氧化反应选择性,例如在存在的情况下选择性形成苯甲醛或苯乙烯环氧化物。讨论了作为唯一氧化剂的二氧或作为反应物的H2 / O2混合物。提出了导致苯甲醛产物形成的新反应通道,该通道涉及亚稳四元环CCOO *中间体的形成,这解释了最近实验观察到在约1.4 nm金簇上苯甲醛的高产率。研究了金簇的电荷状态对反应选择性和反应速率的影响。结果表明,以Au_(34)〜-团簇为基准模型,反应选择性不受团簇电荷状态的影响。然而,由较大的O2吸附能引起的阴离子金簇上苯乙烯氧化反应速率显着提高,表明阴离子簇具有更高的催化活性。还探讨了使用H2作为添加剂对苯乙烯环氧化物产生产物选择性急剧增加的机理。我们发现,H2添加剂的主要作用是促进O2在亚纳米金簇上解离为活性O原子,从而导致对环氧产物的高选择性。这项系统的研究可以定量评估亚纳米金团簇对苯乙烯选择性氧化的尺寸依赖性活性和选择性。

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