4.7 Article

Effect of humidity and thermal cycling on the catalyst layer structural changes in polymer electrolyte membrane fuel cells

Journal

ENERGY CONVERSION AND MANAGEMENT
Volume 189, Issue -, Pages 24-32

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.enconman.2019.03.066

Keywords

Polymer electrolyte membrane fuel cell; Catalyst layer; Degradation; Relative humidity cycling; Thermal cycling

Funding

  1. National Natural Science Foundation of China [21875161]
  2. National Key R&D Program of China [2018YFB0105601]
  3. Natural Science Foundation of Tianjin, China [17JCZDJC31000]
  4. Ontario-China Research and Innovation Fund (OCRIF Round 3)
  5. Natural Sciences and Engineering Research Council of Canada via a Discovery Grant

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Catalyst layer structural changes in polymer electrolyte membrane fuel cells have significant impact on the cell performance and durability. In this study, ex-situ experiments are designed to investigate the effect of humidity and/or thermal cycles on the structural changes of catalyst layers. The relative humidity and temperature are controlled by an environmental chamber and the catalyst layer structure is characterized by scanning electron microscopy and optical microscopy. The experimental results indicate that crack growth and development, catalyst agglomerate detachment, and surface bulges are the main structural changes of the catalyst layers. Applying relative humidity and thermal cycling simultaneously causes the most significant crack growth, while applying thermal cycling alone causes no appreciable changes. This indicates that the absolute humidity is the key parameter for the crack growth. Through cyclic voltammetry analysis, it is shown that the electrochemical active surface area decreases from 64.1 m(2) g(-1) to 49.1 m(2) g(-1) after 500 combined relative humidity and thermal cycles. Analyses of electrochemical impedance spectroscopy show that the charge transfer resistance and ohmic resistance increase significantly after 500 combined relative humidity and thermal cycles, causing the cell performance degradation.

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