Fluorite–Perovskite Heterointerface Engineering Boosts CO2 Electrolysis Performance in Solid Oxide Electrolysis Cells

Solid oxide electrolysis cells (SOECs) provide a promising route for renewable-electricity storage and CO2 conversion into value-added chemicals and fuels, yet their high-temperature operating environment requires the development of efficient and stable fuel electrode materials. Sr0.9Ti0.45Fe0.5W0.05O3−δ (STFW) perovskite material fabricated in our previous work shows a promising SOEC fuel electrode and is expected to be further optimized. Herein, we develop a heterointerface engineering strategy by infiltrating fluorite-type Pr0.1Ce0.9O2−δ (PCO) into the porous STFW fuel electrode, constructing a highly active PCO-STFW composite fuel electrode. The optimized 30PCO-STFW (30 μL PCO) electrode achieves a polarization resistance of 0.14 Ω cm2 at 800 °C. A single cell employing 30PCO-STFW as the fuel electrode delivers an electrolysis current density of 1.33 A cm−2 at 800 °C and 1.5 V, which is 23% higher than that of the STFW cell. Moreover, the 30PCO-STFW cell maintains relatively stable operation at 800 °C and 1.2 V for 70 h. This study demonstrates that PCO-enabled fluorite–perovskite interfacial engineering effectively regulates the surface reaction environment of STFW fuel electrodes, providing an effective strategy for improving CO2 electrolysis performance in SOECs.

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Journal
Materials
Published
2026-09-29
DOI
https://doi.org/10.3390/ma19194158
Primary Topic
Advancements in Solid Oxide Fuel Cells
Type
article
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article

Fluorite–Perovskite Heterointerface Engineering Boosts CO2 Electrolysis Performance in Solid Oxide Electrolysis Cells

Sheng Cui, Yifeng Zheng, Bo Yin, Di Zhang et al.
Materials
Advancements in Solid Oxide Fuel Cells
article

Fluorite–Perovskite Heterointerface Engineering Boosts CO2 Electrolysis Performance in Solid Oxide Electrolysis Cells

Sheng Cui, Yifeng Zheng, Bo Yin, Di Zhang, Guanyu Chen
article en

Abstract

Solid oxide electrolysis cells (SOECs) provide a promising route for renewable-electricity storage and CO2 conversion into value-added chemicals and fuels, yet their high-temperature operating environment requires the development of efficient and stable fuel electrode materials. Sr0.9Ti0.45Fe0.5W0.05O3−δ (STFW) perovskite material fabricated in our previous work shows a promising SOEC fuel electrode and is expected to be further optimized. Herein, we develop a heterointerface engineering strategy by infiltrating fluorite-type Pr0.1Ce0.9O2−δ (PCO) into the porous STFW fuel electrode, constructing a highly active PCO-STFW composite fuel electrode. The optimized 30PCO-STFW (30 μL PCO) electrode achieves a polarization resistance of 0.14 Ω cm2 at 800 °C. A single cell employing 30PCO-STFW as the fuel electrode delivers an electrolysis current density of 1.33 A cm−2 at 800 °C and 1.5 V, which is 23% higher than that of the STFW cell. Moreover, the 30PCO-STFW cell maintains relatively stable operation at 800 °C and 1.2 V for 70 h. This study demonstrates that PCO-enabled fluorite–perovskite interfacial engineering effectively regulates the surface reaction environment of STFW fuel electrodes, providing an effective strategy for improving CO2 electrolysis performance in SOECs.

MaterialsVol. 19(19)
Nanjing Tech University (CN), Morgan Advanced Materials (United Kingdom) (GB), Wuxi Institute of Arts & Technology (CN)
Affordable and clean energy
Openalex Percentile: Top 26%
Advancements in Solid Oxide Fuel Cells
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