Abstract: (72 Views)
The structural and electrochemical properties of Gd-doped perovskite oxides were investigated to improve the performance of solid oxide fuel cell (SOFC) cathodes. Ba0.5Sr0.5-xGdxCoO3-δ and BaSr1-xGdxCo2O5+δ (BSGC) compounds were synthesized via a sol–gel thermolysis method to elucidate the effects of Gd incorporation on crystal structure, microstructure, and electrochemical activity. X-ray diffraction (XRD) and scanning electron microscopy (SEM) confirmed the coexistence of simple and double perovskite phases, with Gd substitution leading to finer grains (down to 0.4 ± 0.14 μm) and improved phase homogeneity. Area-specific resistance (ASR) and conductivity measurements revealed a strong structure–performance relationship. The optimal composition, Ba0.5Sr0.3Gd0.2CoO3-δ, exhibited an exceptionally low ASR of 0.12 Ω cm² at 700 °C which further decreased to a minimum of 0.04 Ω cm² at 850 °C, significantly outperforming GdBaCo2O5+δ (GBCO), (1.76 Ω cm²). These findings demonstrate that rational structural design through rare-earth doping effectively enhances oxygen transport and electrochemical activity, providing a promising pathway for high-performance intermediate-temperature SOFC cathodes.
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HIGHLIGHTS:
Gd-doping enhances IT-SOFC cathode performance via TPB density.
Mixed BaSrCoO3−δ phases reduce area-specific resistance.
Sol–gel thermolysis enables controlled synthesis of Ba0.5Sr0.5−xGdxCoO3−δ.
Oxygen-vacancy engineering improves ORR kinetics in BaSr1−xGdxCo2O5+δ.
Ba0.5Sr0.3Gd0.2CoO3−δ shows optimized electrochemical performance.