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Improving anti-oxidation properties of metal interconnects in solid oxide fuel cells via a dense Ag-based coating layer

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2025-09-01

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0016-2361

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Yang G, Potter A, Sumner J. (2026) Improving anti-oxidation properties of metal interconnects in solid oxide fuel cells via a dense Ag-based coating layer. Fuel, Volume 404, Part A, January 2026, Article number 136134

Abstract

Solid Oxide Fuel Cells (SOFCs) are a highly efficient energy conversion technology, but the degradation of metal interconnects remains a critical challenge. Conventional coatings often lack sufficient electrochemical performance and stability. In this study, a dense Ag coating was developed using the screen-printing method to improve the electrochemical performance and chemical compatibility of SOFC interconnects. Symmetric and single cells were prepared with La0.6Sr0.4Co0.2Fe0.8O3−δ cathodes and SUS430 interconnects to evaluate the coating under high-temperature conditions, simulating real SOFC operation. The Ag coating demonstrated excellent adhesion, uniformity, and oxidation resistance, with conductivity increasing from 0.01 to 13.13 S cm^−1 at 650 ∘C after coating and the area-specific resistance decreasing from 1.843 to 0.378 Ω cm^2 after coating between cathode and interconnect at 750 ∘C. Moreover, the coating effectively inhibited Cr diffusion from the interconnect to the cathode, addressing a major limitation in SOFC durability. These results suggest that Ag coatings offer a practical and promising solution to enhance the performance and extend the lifespan of SOFC systems.

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Git repository

Keywords

Solid oxide fuel cells, Metallic interconnects, Ag coating, Oxidation, Cr poisoning, Energy, 4004 Chemical engineering, 4012 Fluid mechanics and thermal engineering, 4019 Resources engineering and extractive metallurgy

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Attribution 4.0 International

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This research was supported by the Centre for Energy Engineering at Cranfield University (UK).
Thank you to the China Scholarship Council for their support.

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