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Details on Oxygen Surface Exchange Mechanism over Pr1.6Ca0.4Ni1−yCuyO4+δ Solid Oxide Fuel Cell/Electrolyzer Air Electrodes Full article

Journal Electrochemical Materials and Technologies
, E-ISSN: 2949-0561
Output data Year: 2025, Volume: 4, Number: 2, Article number : 20254053, Pages count : 12 DOI: 10.15826/elmattech.2025.4.053
Tags solid oxide fuel cells, solid oxide electrolyzers, layered nickelates, oxygen surface exchange, isotope exchange of oxygen
Authors Sadykov V. 1 , Sadovskaya E. 1 , Eremeev N. 1 , Pikalova E. 2
Affiliations
1 Federal Research Center Boreskov Institute of Catalysis SB RAS, Novosibirsk 630090, Russia
2 Institute of High-Temperature Electrochemistry UB RAS, Ekaterinburg 620066, Russia

Funding (3)

1 Ministry of Science and Higher Education of the Russian Federation FWUR-2024-0033
2 Ministry of Science and Higher Education of the Russian Federation FWUR-2024-0038
3 Ministry of Science and Higher Education of the Russian Federation FUME-2025-0019 (125020501556-0)(075-03-2025-112)

Abstract: In the design of solid oxide fuel cell/electrolyzer air electrodes, the oxygen mobility and surface reactivity are of paramount importance. In this study, the oxygen surface heteroexchange rate is examined for a series of promising electrode materials, Pr1.6Ca0.4Ni1−yCuyO4+δ (y = 0.0–0.4). The investigation encompasses the relationship between this rate and the structural, surface, and electrochemical properties. Single-phase materials synthesized by a nitrate combustion technique using glycerol as a fuel possess an orthorhombic structure. The oxygen surface reactivity is studied by the temperature-programmed isotope exchange of oxygen with 18O2 in a flow reactor. The values of the oxygen heteroexchange rate (R*) and surface exchange constant (k*) are acquired using mathematical modeling. The isotope exchange between the gas oxygen and the sample surface occurs primarily via the R2-type of exchange mechanism, i.e., the simultaneous exchange of two atoms of the oxygen molecule with two atoms of oxygen in the sample surface. The process is limited by surface exchange of oxygen characterized by high values of surface exchange constant (up to ~ 10–5 cm/s at 700 °C). The best characteristics are achieved for the Pr1.6Ca0.4Ni1−yCuyO4+δ samples, y = 0.0–0.2. There is a correlation of the oxygen exchange kinetic parameters (surface exchange constant, tracer diffusion coefficient) with the electrochemical properties of the electrodes according to the Adler–Lane–Steele model.
Cite: Sadykov V. , Sadovskaya E. , Eremeev N. , Pikalova E.
Details on Oxygen Surface Exchange Mechanism over Pr1.6Ca0.4Ni1−yCuyO4+δ Solid Oxide Fuel Cell/Electrolyzer Air Electrodes
Electrochemical Materials and Technologies. 2025. V.4. N2. 20254053 :1-12. DOI: 10.15826/elmattech.2025.4.053
Dates:
Submitted: Jun 8, 2025
Accepted: Jun 16, 2025
Published online: Jun 20, 2025
Identifiers: No identifiers
Citing: Пока нет цитирований
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