电解质
体积流量
材料科学
粒径
阴极
极化(电化学)
化学
粒子(生态学)
电极
分析化学(期刊)
复合材料
色谱法
热力学
物理
海洋学
物理化学
地质学
作者
Preetam Sharma,Bapi Bera,Douglas Aaron,Münir M. Besli,Saravanan Kuppan,Lei Cheng,Jonathan Braaten,Nathan Craig,S. Michael Stewart,Michael Metzger,Christina Johnston,Matthew M. Mench
标识
DOI:10.1149/1945-7111/ac9ee5
摘要
This work quantifies in-plane spatial heterogeneity (polymer electrolyte fuel cell cathode inlet vs outlet) in Pt particle size growth and distribution as a function of nitrogen (N 2 ) flow rate during a square-wave accelerated stress test (AST). The average Pt particle sizes for membrane electrode assemblies (MEAs) subjected to N 2 flow rates ranging from 4–16 sccm cm −2 are in the range 9–10.5 nm at the end-of-life (EOL) with similar electrochemically active surface area (ECSA) loss (∼65%). However, Pt particle size at EOL exhibits spatial heterogeneity: greater Pt particle size growth occurs near the flow field outlet than the inlet. The spatial heterogeneity for a fully-humidified N 2 flow is believed to originate from non-uniform humidification (outlet is more humidified than the inlet) across the cell for a co-flow arrangement. A first-order rate model for ECSA loss predicts linear increase of the rate constant with N 2 flow rate. The polarization losses of the aged MEAs over a wide range of operating conditions increase with N 2 flow rate. From the results of this work, for holistically assessing durability of Pt catalysts in fuel cells at high humidity conditions, it is recommended to include purge gas flow rate as a stressor during an AST.
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