Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/112162
Title: Multivalent metal perovskite YbCoO₃ as a novel proton-conducting electrolyte for solid oxide fuel cells
Authors: Linghu, J
Butt, MK
Feng, P
Yang, K 
Ye, F
Yang, T
Che, J
Yang, M 
Li, Z
Issue Date: Jan-2025
Source: Ceramics international, Jan. 2025, v. 51, no. 3, p. 2922-2929
Abstract: For solid oxide fuel cells, an electrolyte with good stability and high ion conductivity is highly desired but difficult to obtain. Recently, a novel hydrogenation mechanism other than water dissociation have been reported in multivalent metal-based oxides, which provide a new route to increase proton concentration as well as proton conductivity. In this computational study, we propose the multivalent metal perovskite YbCoO3 as a promising proton-conducting electrolyte due to its good thermodynamic and chemical stability, semiconductor characteristics, high-concentration proton incorporation, and low proton migration barrier. Our findings also reveal that charge compensation of the multivalent metal is crucial for the high-concentration proton incorporation. On the other hand, both the shortening of the O-O distance and the Co-H repulsion play key roles in determining the energy barrier to proton migration, where local structural deformations are responsible for facilitating intra- and inter-octahedron proton transfer in YbCoO3. Our results might assist in the development of high-performance proton-conducting electrolytes for advanced solid oxide fuel cells.
Keywords: First-principles calculation
Migration barrier
Proton incorporation
Proton-conducting electrolyte
Structural deformation
Publisher: Elsevier Ltd
Journal: Ceramics international 
ISSN: 0272-8842
EISSN: 1873-3956
DOI: 10.1016/j.ceramint.2024.11.269
Appears in Collections:Journal/Magazine Article

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