Morphological Characteristics of Catalyst Layer Defects in Catalyst-Coated Membranes in PEM Fuel Cells

Muneendra Prasad Arcot, Magnus Cronin, M. Fowler, M. Pritzker
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Abstract

Catalyst layer defects and irregularities in catalyst-coated membrane (CCM) electrodes affect the lifetime of polymer electrolyte membrane fuel cells (PEMFCs) during their operation. Thus, catalyst layer defects are important concerns for fuel cell manufacturers and prompt the development of quality control systems with the aim of fabricating defect-free electrodes. Consequently, the objective of this study is to gain a fundamental understanding of the morphological changes of real catalyst layer defects that have developed during CCM production. In this paper, missing catalyst layer defects (MCLD) formed during the decal transfer process are investigated through a nondestructive method using reflected light microscopy. The geometric features of the defects are quantified, and their growth is measured at regular time intervals from beginning-of-life (BOL) to end-of-life (EOL) until the OCV has dropped by 20% of its initial value as per a DOE-designed protocol. Overall, two types of degradation are observed: surface degradation caused by catalyst erosion and crack degradation caused by membrane mechanical deformation. Furthermore, catalyst layer defects formed during the decal transfer process were found to exhibit a higher growth rate at middle-of-life (MOL-1) and stabilize by EOL. This type of study will provide manufacturers with baseline information to allow them to select and reject CCMs, ultimately increasing the lifetime of fuel cell stacks.
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PEM燃料电池中涂膜催化剂层缺陷的形态特征
催化剂包覆膜(CCM)电极的催化剂层缺陷和不规则性影响着聚合物电解质膜燃料电池(pemfc)的使用寿命。因此,催化剂层缺陷是燃料电池制造商关注的重要问题,并促使质量控制系统的发展,目的是制造无缺陷的电极。因此,本研究的目的是对CCM生产过程中产生的真实催化剂层缺陷的形态变化有一个基本的了解。本文利用反射光显微镜研究了在贴花转移过程中形成的缺失催化剂层缺陷(MCLD)。缺陷的几何特征被量化,并且它们的生长在从生命周期开始(BOL)到生命周期结束(EOL)的规则时间间隔内进行测量,直到OCV按照doe设计的协议下降到其初始值的20%。总的来说,观察到两种类型的降解:催化剂侵蚀引起的表面降解和膜力学变形引起的裂纹降解。此外,在贴花转移过程中形成的催化剂层缺陷在寿命中期(MOL-1)表现出较高的生长速率,并通过EOL稳定。这种类型的研究将为制造商提供基线信息,使他们能够选择和拒绝ccm,最终增加燃料电池组的使用寿命。
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