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  4. Membrane electrode assembly fabricated with the combination of Pt/C and hollow shell structured-Pt-SiO2@ZrO2 sphere for self-humidifying proton exchange membrane fuel cell
 
research article

Membrane electrode assembly fabricated with the combination of Pt/C and hollow shell structured-Pt-SiO2@ZrO2 sphere for self-humidifying proton exchange membrane fuel cell

Ko, Y. D.
•
Yang, H. N.
•
Zuttel, Andreas
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2017
Journal Of Power Sources

The Pt-supported hollow structured Pt-HZrO2 with the shell thickness of 27 nm is successfully synthesized. The water retention ability of Pt-HZrO2 is significantly enhanced compared with that of SiO2@ZrO2 due to the hydrophilic hollow structured HZrO2 with high BET surface area. Pt-C and Pt-HZrO2 are combined with different weight fractions to prepare the double catalyst electrode (DCE). The membrane electrode assembly with the DCE is fabricated and applied to both anode and cathode or anode side only. The water flooding and thus rapid voltage drop is affected by the presence/or absence of the DCE at the cathode side. The cell test and visual experiment suggests that the Pt-HZrO2 layer adsorb the water molecules generated by the oxygen reduction reaction (ORR), preventing the water flooding. The power generation under RH 0% strongly suggests the back-diffusion of water molecules generated by the ORR. The flow rate to the cathode significantly affects the water flooding and cell performance. Higher flow rate to the cathode is advantageous to expel the water generated by the ORR, thus preventing water flooding and enhancing the cell performance. Therefore, the weight fraction of Pt-C to Pt-HZrO2 and the flow rate to the cathode should be well balanced. (C) 2017 Elsevier B.V. All rights reserved.

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Type
research article
DOI
10.1016/j.jpowsour.2017.09.043
Web of Science ID

WOS:000415780000002

Author(s)
Ko, Y. D.
Yang, H. N.
Zuttel, Andreas
Kim, S. D.
Kim, W. J.
Date Issued

2017

Publisher

Elsevier

Published in
Journal Of Power Sources
Volume

367

Start page

8

End page

16

Subjects

Hollow shell structure

•

High surface area

•

Water uptake

•

Water flooding

•

Dual catalyst electrode

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LMER  
Available on Infoscience
January 15, 2018
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/143913
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