Realizing anode-substrate–electrolyte sintering shrinkage compatibility in the fabrication of planar solid oxide fuel cells

Sintering mismatch between anodes and electrolytes induces interfacial delamination, curling and cracking in solid oxide fuel cells (SOFCs), impairing manufacturability and preliminary operational durability. Herein, anode-supported SOFCs are optimized by adjusting calcination temperatures of solid–liquid synthesized 3YSZ powders. A stable monoclinic–tetragonal biphasic structure is verified, where the tetragonal phase fraction rises with temperature. Average particle size increases from 30 nm (700 °C) to 150 nm (1100 °C) with evident agglomeration and sintering neck formation. The anode using 800 °C-calcined powder achieves 20.45% shrinkage well matched with 8YSZ electrolyte, and alleviates interfacial stress. It delivers 11.69% porosity and a high flexural strength of 246 MPa. The single cell reaches peak power densities of 0.656 W cm −2 at 850 °C and 0.465 W cm −2 at 750 °C. No obvious resistance growth or microstructural degradation occurs after 100 h operation. This strategy regulates sintering kinetics to resolve interlayer mismatch defects in SOFC fabrication.

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Publication Details

Journal
Materials Science and Engineering B
Published
2026-09-12
DOI
https://doi.org/10.1016/j.mseb.2026.119866
Primary Topic
Advancements in Solid Oxide Fuel Cells
Type
article
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Realizing anode-substrate–electrolyte sintering shrinkage compatibility in the fabrication of planar solid oxide fuel cells

Jianhui Li, Yejian Xue, Ji Zhao, Houcheng Zhang et al.
Materials Science and Engineering B
Advancements in Solid Oxide Fuel Cells
article

Realizing anode-substrate–electrolyte sintering shrinkage compatibility in the fabrication of planar solid oxide fuel cells

Jianhui Li, Yejian Xue, Ji Zhao, Houcheng Zhang, Wei Zhou, Yu Hong
article en

Abstract

Sintering mismatch between anodes and electrolytes induces interfacial delamination, curling and cracking in solid oxide fuel cells (SOFCs), impairing manufacturability and preliminary operational durability. Herein, anode-supported SOFCs are optimized by adjusting calcination temperatures of solid–liquid synthesized 3YSZ powders. A stable monoclinic–tetragonal biphasic structure is verified, where the tetragonal phase fraction rises with temperature. Average particle size increases from 30 nm (700 °C) to 150 nm (1100 °C) with evident agglomeration and sintering neck formation. The anode using 800 °C-calcined powder achieves 20.45% shrinkage well matched with 8YSZ electrolyte, and alleviates interfacial stress. It delivers 11.69% porosity and a high flexural strength of 246 MPa. The single cell reaches peak power densities of 0.656 W cm −2 at 850 °C and 0.465 W cm −2 at 750 °C. No obvious resistance growth or microstructural degradation occurs after 100 h operation. This strategy regulates sintering kinetics to resolve interlayer mismatch defects in SOFC fabrication.

Materials Science and Engineering BVol. 334
Nanjing Tech University (CN), University of Nottingham Ningbo China (CN), Ningbo University of Technology (CN), Chinese Academy of Sciences (CN), Suzhou Research Institute (CN), Ningbo Institute of Industrial Technology (CN)
Affordable and clean energy
Openalex Percentile: Top 24%
Advancements in Solid Oxide Fuel Cells
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Realizing anode-substrate–electrolyte sintering shrinkage compatibility in the fabrication of planar solid oxide fuel cells — Jianhui Li, Yejian Xue, et al. · Materials Science and Engineering B (2026) | TGRS Research Map | TGRS