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January 1, 2016Journal of The Electrochemical Society164 citationsOpen Access

Understanding Impacts of Catalyst-Layer Thickness on Fuel-Cell Performance via Mathematical Modeling

IZIryna V. ZenyukPDProdip K. DasAWAdam Z. Weber

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Abstract

In this article, a two-dimensional, multiphase, transient model is introduced and used to explore the impact of catalyst-layer thickness on performance. In particular, the tradeoffs between water production and removal through transport or evaporation are highlighted, with a focus on low-temperature performance. For the latter, a case study of an ultra-thin catalyst layer is undergone to explore how various material properties alter the steady-state and startup performance of a cell. The findings provide understanding and guidance to optimize fuel-cell performance with thin electrodes.

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Zenyuk et al. (2016) studied this question.

synapsesocial.com/papers/6a07ef8309b3c82015378850https://doi.org/10.1149/2.1161607jes
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