材料科学
质子交换膜燃料电池
离聚物
电化学
膜
浸出(土壤学)
电解质
电导率
电极
催化作用
合金
化学工程
燃料电池
无机化学
复合材料
化学
环境科学
生物化学
物理化学
土壤科学
工程类
共聚物
土壤水分
聚合物
作者
ChungHyuk Lee,Xiaohua Wang,Junhui Peng,Adlai Katzenberg,R.K. Ahluwalia,Ahmet Kusoglu,Siddharth Komini Babu,Jacob S. Spendelow,Rangachary Mukundan,Rod L. Borup
标识
DOI:10.1021/acsami.2c07085
摘要
Metal alloy catalysts (e.g., Pt–Co) are widely used in fuel cells for improving the oxygen reduction reaction kinetics. Despite the promise, the leaching of the alloying element contaminates the ionomer/membrane, leading to poor durability. However, the underlying mechanisms by which cation contamination affects fuel cell performance remain poorly understood. Here, we provide a comprehensive understanding of cation contamination effects through the controlled doping of electrodes. We couple electrochemical testing results with membrane conductivity/water uptake measurements and impedance modeling to pinpoint where and how the losses in performance occur. We identify that (1) ∼44% of Co2+ exchange of the ionomer can be tolerated in the electrode, (2) loss in performance is predominantly induced by O2 and proton transport losses, and (3) Co2+ preferentially resides in the electrode under wet operating conditions. Our results provide a first-of-its-kind mechanistic explanation for cation effects and inform strategies for mitigating these undesired effects when using alloy catalysts.
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