Ku YP, Kumar K, Hutzler A, Götz C, Vorochta M, Sougrati MT, Lloret V, Ehelebe K, Mayrhofer KJ, Thiele S, Khalakhan I, Böhm T, Jaouen F, Cherevko S (2024)
Publication Type: Journal article
Publication year: 2024
Pages Range: 8576-8591
Fe-N-C catalysts are considered an earth-abundant alternative to Pt in cathodes of anion exchange membrane fuel cells, although their stability still requires improvement for further commercialization. The degradation of Fe-N-C during both load cycles and start-stop events must be understood and mitigated to minimize system costs. Several approaches have recently been proposed to improve the durability of Fe active species during the oxygen reduction reaction in acidic media. On the other hand, knowledge of the degradation of Fe-N-C catalysts during start-stop events of anion exchange membrane fuel cells remains scarce. In this work, we use a gas diffusion electrode half-cell coupled with inductively coupled plasma mass spectrometry (GDE-ICP-MS) to quantify the Fe dissolution rates in the potential range between 0.93 and 1.5 V
APA:
Ku, Y.P., Kumar, K., Hutzler, A., Götz, C., Vorochta, M., Sougrati, M.T.,... Cherevko, S. (2024). Impact of Carbon Corrosion and Denitrogenation on the Deactivation of Fe-N-C Catalysts in Alkaline Media. ACS Catalysis, 8576-8591. https://doi.org/10.1021/acscatal.4c01219
MLA:
Ku, Yu Ping, et al. "Impact of Carbon Corrosion and Denitrogenation on the Deactivation of Fe-N-C Catalysts in Alkaline Media." ACS Catalysis (2024): 8576-8591.
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