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Novel Materials Based on Ruddlesden–Popper Phases for Solid Oxide Fuel Cells and Oxygen Separation Membranes: Fundamentals of Oxygen Transport Review

Journal Chimica Techno Acta
, E-ISSN: 2411-1414
Output data Year: 2025, Volume: 12, Number: 3, Article number : 12304, Pages count : 39 DOI: 10.15826/chimtech.2025.12.3.04
Tags solid oxide fuel cells; oxygen separation membranes; oxygen transport; isotope exchange of oxygen; diffusion; Ruddlesden–Popper phases
Authors Sadykov Vladislav 1 , Sadovskaya Ekaterina 1 , Eremeev Nikita 1 , Kolchugin Alexander 2 , Filonova Elena 3 , Tsvinkinberg Viktor 2 , Zhulanova Tatyana 2,3 , Pikalova Elena 2,3
Affiliations
1 Federal Research Center Boreskov Institute of Catalysis, Novosibirsk 630090, Russia
2 Institute of High-Temperature Electrochemistry, Ekaterinburg 620137, Russia
3 Ural Federal University, Ekaterinburg 620062, Russia

Funding (4)

1 Russian Science Foundation 23-73-00045
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 FWUR-2024-0033
4 Ministry of Science and Higher Education of the Russian Federation FUME-2025-0019 (125020501556-0)(075-03-2025-112)

Abstract: In the field of modern hydrogen energy, obtaining pure hydrogen and syngas and using them for green energy production are significant problems. Developing solid oxide fuel cells (SOFC) and catalytic membranes for oxygen separation as well as materials for these devices is one of the most promising ways to solve these problems. First-order Ruddlesden–Popper phases are important materials for such devices. In this review, fundamentals of developing such materials for SOFC cathodes and oxygen separation membranes’ permselective layers based on the research into their oxygen mobility and surface reactivity are presented. For Ruddlesden–Popper phases Ln2−xMxNiO4+δ, Ln2−xCaxNi1−yCuyO4+δ, and Ln2−xLn’xNiO4+δ (Ln = La, Pr, Nd; Ln’ = Pr, Nd, Sm, Eu, Gd; M = Ca, Sr, Ba) a high oxygen mobility is shown (D* ~ 10−7 cm2/s at 700 °C) by isotope exchange of oxygen techniques, being provided by the cooperative mechanism of oxygen migration involving both regular and highly-mobile interstitial oxygen. After optimization of composition and nanodomain structure of these materials, as cathodes of SOFC they provided a high power density, while for asymmetric supported oxygen separation membranes – a high oxygen permeability. Hence, the application of mixed ionic-electronic materials with high oxygen mobility and surface reactivity and optimized structural, morphological and textural properties is a promising approach in the design of SOFC cathodes and oxygen separation membranes.
Cite: Sadykov V. , Sadovskaya E. , Eremeev N. , Kolchugin A. , Filonova E. , Tsvinkinberg V. , Zhulanova T. , Pikalova E.
Novel Materials Based on Ruddlesden–Popper Phases for Solid Oxide Fuel Cells and Oxygen Separation Membranes: Fundamentals of Oxygen Transport
Chimica Techno Acta. 2025. V.12. N3. 12304 :1-39. DOI: 10.15826/chimtech.2025.12.3.04
Dates:
Submitted: May 21, 2025
Published print: Jun 16, 2025
Published online: Jun 20, 2025
Identifiers: No identifiers
Citing: Пока нет цитирований
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