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Utilization of an Isovalent Doping Strategy in Cobalt-Free Ferrites for Highly Active and Stable Solid Oxide Fuel Cell Cathodes

Author(s)
Kim, HyunminLim, ChaesungKwon, OhhunChoi, SihyukHan, Jeong WooKim, Guntae
Issued Date
2022-03
DOI
10.1021/acsaem.1c04005
URI
https://scholarworks.unist.ac.kr/handle/201301/61156
Citation
ACS APPLIED ENERGY MATERIALS, v.5, no.3, pp.3417 - 3425
Abstract
Cobalt-free ferrites are attracting tremendous spotlight as prospective solid oxide fuel cell cathode material nowadays owing to their good structural stability and great thermo-mechanical compatibility with electrolytes. Nevertheless, the oxygen reduction reaction (ORR) activity for cobalt-free ferrites is comparatively lower than that for cobalt-based cathodes. Hence, an isovalent doping strategy is an attractive option to significantly promote the ORR activity of cobalt-free ferrites. Herein, we systematically investigate the optimal Sr2+ concentration in cobalt-free Pr0.5Ba0.5-ySryFeO3-delta (PBSF series). The replacement of Ba2+ by Sr2+ is beneficial to decrease the thermal expansion coefficient. Moreover, the Pr0.5Ba0.2Sr0.3FeO3-delta material demonstrates the highest electrical conductivity and the lowest area-specific resistance (R-p, 0.027 Omega cm(2), 700 degrees C) among the PBSF series. To elucidate the close relationship between the Rp value and the electrical conductivity in the PBSF series, distribution of relaxation time analysis and density functional theory calculations are utilized. Furthermore, outstanding cell operational durability is exhibited for 200 h.
Publisher
AMER CHEMICAL SOC
ISSN
2574-0962
Keyword (Author)
solid oxide fuel cell cathodeisovalent doping strategycobalt-free ferriteselectrical conductivitycathodic polarization resistanceelectrochemical performance
Keyword
DOUBLE-PEROVSKITEOXYGEN-ELECTRODEPOWER-DENSITYTEMPERATUREPERFORMANCETRANSITIONKINETICS

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