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钯基双金属纳米合金催化的一氧化碳氧化反应。

CO oxidation catalysed by Pd-based bimetallic nanoalloys.

作者信息

Palagin Dennis, Doye Jonathan P K

机构信息

Physical and Theoretical Chemistry Laboratory, Department of Chemistry, University of Oxford, South Parks Road, Oxford, OX1 3QZ, UK.

出版信息

Phys Chem Chem Phys. 2015 Nov 14;17(42):28010-21. doi: 10.1039/c5cp00889a. Epub 2015 Mar 30.

Abstract

Density functional theory based global geometry optimization has been used to demonstrate the crucial influence of the geometry of the catalytic cluster on the energy barriers for the CO oxidation reaction over Pd-based bimetallic nanoalloys. We show that dramatic geometry change between the reaction intermediates can lead to very high energy barriers and thus be prohibitive for the whole process. This introduces challenges for both the design of new catalysts, and theoretical methods employed. On the theory side, a careful choice of geometric configurations of all reaction intermediates is crucial for an adequate description of a possible reaction path. From the point of view of the catalyst design, the cluster geometry can be controlled by adjusting the level of interaction between the cluster and the dopant metal, as well as between the adsorbate molecules and the catalyst cluster by mixing different metals in a single nanoalloy particle. We show that substitution of a Pd atom in the Pd5 cluster with a single Ag atom to form Pd4Ag1 leads to a potential improvement of the catalytic properties of the cluster for the CO oxidation reaction. On the other hand, a single Au atom does not enhance the properties of the catalyst, which is attributed to a weaker hybridization between the cluster's constituent metals and the adsorbate molecules. Such flexibility of properties of bimetallic nanoalloy clusters illustrates the possibility of fine-tuning, which might be used for design of novel efficient catalytic materials.

摘要

基于密度泛函理论的全局几何优化已被用于证明催化簇的几何结构对钯基双金属纳米合金上一氧化碳氧化反应的能垒具有关键影响。我们表明,反应中间体之间剧烈的几何结构变化会导致非常高的能垒,从而对整个过程产生阻碍。这给新型催化剂的设计以及所采用的理论方法都带来了挑战。在理论方面,仔细选择所有反应中间体的几何构型对于充分描述可能的反应路径至关重要。从催化剂设计的角度来看,簇的几何结构可以通过调整簇与掺杂金属之间以及吸附质分子与催化剂簇之间的相互作用水平来控制,方法是在单个纳米合金颗粒中混合不同的金属。我们表明,用单个银原子取代Pd5簇中的一个钯原子形成Pd4Ag1会使该簇对一氧化碳氧化反应的催化性能有潜在的提升。另一方面,单个金原子并不能增强催化剂的性能,这归因于簇的组成金属与吸附质分子之间较弱的杂化作用。双金属纳米合金簇性质的这种灵活性说明了微调的可能性,这可能用于设计新型高效催化材料。

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