首页> 外文期刊>Journal of the American Chemical Society >Theoretical and Experimental Understanding of Hydrogen Evolution Reaction Kinetics in Alkaline Electrolytes with Pt-Based Core-Shell Nanocrystals
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Theoretical and Experimental Understanding of Hydrogen Evolution Reaction Kinetics in Alkaline Electrolytes with Pt-Based Core-Shell Nanocrystals

机译:基于Pt核壳纳米晶的碱性电解质中氢生成反应动力学的理论和实验理解

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The free energy of H adsorption (Delta G(H)) on a metallic catalyst has been taken as a descriptor to predict the hydrogen evolution reaction (HER) kinetics but has not been well applied in alkaline media. To assess this, we prepare Pd@Pt and PdH@Pt core-shell octahedra enclosed by Pt(111) facets as model catalysts for controlling the Delta G(H) affected by the ligand, the strain, and their ensemble effects. The Pt shell thickness is adjusted from 1 to 5 atomic layers by varying the amount of Pt precursor added during synthesis. In an alkaline electrolyte, the HER activity of core-shell models is improved either by the construction of core-shell structures or by the increased number of Pt shells. These experimental results are in good agreement with the Delta G(H) values calculated by the first-principles density functional theory with a complex surface strained core-shell slab model. However, enhanced HER activities of Pd@Pt and PdH@Pt core-shell nanocrystals over the Pt catalyst are inconsistent with the thermodynamic Delta G(H) scaling relationship only but can be explained by the work function and apparent Delta G(H) models that predict the interfacial electric field for the HER
机译:金属催化剂上H吸附的自由能(Delta G(H))已被用作预测氢释放反应(HER)动力学的描述子,但并未很好地应用于碱性介质中。为了对此进行评估,我们准备了由Pt(111)面包围的Pd @ Pt和PdH @ Pt核-壳八面体,作为模型催化剂来控制受配体,菌株及其集成效应影响的Delta G(H)。通过改变合成过程中添加的Pt前体的数量,可以将Pt壳的厚度从1原子层调整到5原子层。在碱性电解液中,核-壳模型的HER活性通过核-壳结构的构建或Pt壳数量的增加而得到改善。这些实验结果与通过第一原理密度泛函理论计算的具有复杂表面应变核壳板模型的Delta G(H)值非常吻合。但是,Pt催化剂上Pd @ Pt和PdH @ Pt核壳纳米晶体增强的HER活性仅与热力学Delta G(H)的比例关系不一致,但可以通过功函数和表观Delta G(H)模型来解释。预测HER的界面电场

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