4.8 Article

Open circuit voltage durability study and model of catalyst coated membranes at different humidification levels

Journal

JOURNAL OF POWER SOURCES
Volume 195, Issue 21, Pages 7323-7331

Publisher

ELSEVIER
DOI: 10.1016/j.jpowsour.2010.05.027

Keywords

Chemical degradation; Degradation model; Fluoride release; Fuel cell durability

Funding

  1. Natural Sciences and Engineering Research Council (NSERC) of Canada

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Fuel cell material durability is an area of extensive research today. Chemical degradation of the ionomer membrane is one important degradation mechanism leading to overall failure of fuel cells. This study examined the effects of relative humidity on the chemical degradation of the membrane during open circuit voltage testing. Five Gore (TM) PRIMEA (R) series 5510 catalyst coated membranes were degraded at 100%, 75%, 50%, and 20% RH. Open circuit potential and cumulative fluoride release were monitored over time. Additionally scanning electron microscopy images were taken at end of the test. The results showed that with decreasing RH fluoride release rate increased as did performance degradation. This was attributed to an increase in gas crossover with a decrease in RH. Further, it is also shown that interruptions in testing may heavily influence cumulative fluoride release measurements where frequent stoppages in testing will cause fluoride release to be underestimated. SEM analysis shows that degradation occurred in the ionomer layer close to the cathode catalyst. A chemical degradation model of the ionomer membrane was used to model the results. The model was able to predict fluoride release trends, including the effects of interruptions, showing that changes in gas crossover with RH could explain the experimental results. (C) 2010 Elsevier B.V. All rights reserved.

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