4.7 Article

Optimizing La1-xSrxFeO3-d electrodes for symmetrical reversible solid oxide cells

Journal

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
Volume 48, Issue 29, Pages 11045-11057

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2022.12.043

Keywords

LaFeO3; Sr doping; Symmetrical structure; RSOCs

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Reversible solid oxide cells (RSOCs) often suffer from thermal property mismatching between electrodes and electrolyte, leading to reduced energy efficiency and irreversible performance degradation. Symmetrical RSOCs (SRSOCs) using identical electrode materials offer a solution to address these issues and simplify the manufacturing process. La1-xSrxFeO3-$ perovskites are developed and applied as both fuel and air electrode materials for SRSOCs, showing improved crystal structures, conductivities, and electrochemical performance after Sr substitution for La. The La0.9Sr0.1FeO3-$ symmetrical cell exhibits stable operation for 128 h under SOFC mode and 25 h under SOFC-SOEC cycle mode, making it a promising multifunctional electrode material for SRSOCs.
Reversible solid oxide cells (RSOCs) are prone to material thermal property mismatching problems between electrodes and electrolyte, which greatly reduces their energy efficiency and causes irreversible performance degradation. One solution is to develop symmetrical RSOCs (SRSOCs) employing identical electrode materials to effectively address thermal property mismatching related issues and also simplify the manufacturing process. Herein, La1-xSrxFeO3-$ (x = 0-0.20) perovskites are developed and applied as both fuel and air electrode materials for SRSOCs for the first time. The impact of Sr substitution for La on the crystal structures, conductivities and electrochemical performance of LaFeO3 oxides is systematically investigated. It is found, after doping with Sr, overall properties of the LaFeO3 oxides show an obvious improvement, especially for the sample of La0.9Sr0.1FeO3-$ (LSF9010). The peak power density of SRSOCs featuring LSF9010 can stand at 0.575 W cm-2 at 800 degrees C under the solid oxide fuel cell (SOFC) working model. Under solid oxide elec-trolysis cell (SOEC) model, the current density stands at 0.84 A cm-2 at 800 degrees C and 1.5 V. More importantly, the La0.9Sr0.1FeO3-$ symmetrical cell can operate steadily for 128 h under SOFC mode and 25 h under SOFC-SOEC cycle mode, respectively, with almost no perfor-mance degradation found. The outcomes of the current study show that the developed LSF9010 may be used as an outstanding multifunctional electrode material in SRSOCs. (c) 2022 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.

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