Elucidating the proton-coupled oxygen reduction pathway in protonic ceramic fuel cells

Authors
Kim, SeulchanYoon, DogeunChae, JinwoongKim, HyeonwooHong, JongsupSon, Ji-WonLee, Jong-HoKang, SungwooJi, Ho-Il
Issue Date
2026-03
Publisher
Royal Society of Chemistry
Citation
Energy & Environmental Science, v.19, no.5, pp.1715 - 1731
Abstract
The proton-coupled oxygen reduction reaction (PC-ORR) at protonic ceramic fuel cell (PCFC) cathodes involves multiple charges, which are proton, oxygen ion, and electron/electron hole, and its complexity has long impeded unambiguous identification of the reaction pathway and the rate-determining step (RDS). The difficulty is amplified by the prevailing practice of subjectively positing an a priori “most probable” pathway to infer the RDS—a procedure that heightens the risk of decisive bias and error. Consequently, mutually inconsistent pathways have been proposed for ostensibly the same reaction. Here, we present a generalized microkinetic framework that infers the RDS without prior pathway construction. Applying this approach, we resolve the RDS for two widely studied PCFC cathodes, PrBa0.5Sr0.5Co1.5Fe0.5O5+δ (PBSCF) and BaCo0.4Fe0.4Zr0.1Y0.1O3−δ (BCFZY). PBSCF is limited by vacancy-assisted O2 dissociation, whereas BCFZY is limited by a proton-coupled OH adsorbates formation step involving adsorbed atomic oxygen and bulk protons. While both exhibit sufficient proton transport and fast bulk diffusion such that surface reactions dominate porous cathode performance, the origin of the contrasting RDSs is traced to their different proton uptake/release mechanisms.
Keywords
POWER-DENSITY; SOFC CATHODE; OXIDE; PEROVSKITE; SURFACE EXCHANGE; HIGH-PERFORMANCE; HYDRATION; PRESSURE; SRTIO3
ISSN
1754-5692
URI
https://pubs.kist.re.kr/handle/201004/154443
DOI
10.1039/d5ee06170a
Appears in Collections:
KIST Article > 2026
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