首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Kinetics and Mechanism of Redox Processes of Pt/C and Pt3Co/C Cathode Electrocatalysts in a Polymer Electrolyte Fuel Cell during an Accelerated Durability Test
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Kinetics and Mechanism of Redox Processes of Pt/C and Pt3Co/C Cathode Electrocatalysts in a Polymer Electrolyte Fuel Cell during an Accelerated Durability Test

机译:加速耐久性试验中聚合物电解质燃料电池中Pt / C和Pt3Co / C阴极电催化剂的氧化还原动力学和机理

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The degradation of Pt electrocatalysts in membrane electrode assemblies (MEAs) of polymer electrolyte fuel cells under working conditions is a serious problem for their practical use. Here we report the kinetics and mechanism of redox reactions at the surfaces of Pt/C and Pt3Co/C cathode electrocatalysts during catalyst degradation processes by an accelerated durability test (ADT) studied by operando time-resolved X-ray absorption fine structure (XAFS) spectroscopy. Systematic analysis of a series of Pt L-III-edge time-resolved XAFS spectra measured every 100 ms at different degradation stages revealed changes in the kinetics of Pt redox reactions on Pt/C and Pt3Co/C cathode electrocatalysts. In the case of Pt/C, as the number of ADT cycles increased, structural changes for Pt redox reactions (charging, surface, and subsurface oxidation) became less sensitive because of the agglomeration of catalyst particles. It was found that their rate constants were almost constant independent of the agglomeration of the Pt electrocatalyst. On the other hand, in the case of Pt3Co/C, the rate constants of the redox reactions of the cathode electrocatalyst gradually reduced as the number of ADT cycles increased. The differences in the kinetics for the redox processes would be differences in the degradation mechanism of these cathode electrocatalysts.
机译:在工作条件下,聚合物电解质燃料电池的膜电极组件(MEA)中Pt电催化剂的降解是其实际应用的严重问题。在这里,我们通过操作时间分辨的X射线吸收精细结构(XAFS)研究的加速耐久性试验(ADT),报告了催化剂降解过程中Pt / C和Pt3Co / C阴极电催化剂表面上氧化还原反应的动力学和机理。光谱学。每100毫秒在不同降解阶段测量的一系列Pt L-III边缘时间分辨XAFS光谱的系统分析显示,Pt / C和Pt3Co / C阴极电催化剂上Pt氧化还原反应的动力学变化。在Pt / C的情况下,随着ADT循环次数的增加,由于催化剂颗粒的团聚,Pt氧化还原反应的结构变化(带电,表面和次表面氧化)变得不太敏感。发现它们的速率常数几乎与铂电催化剂的附聚无关而恒定。另一方面,在Pt 3 Co / C的情况下,随着ADT循环数的增加,阴极电催化剂的氧化还原反应的速率常数逐渐降低。氧化还原过程的动力学差异将是这些阴极电催化剂的降解机理的差异。

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