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Fabrication of LSM-SDC composite cathodes for intermediate-temperature solid oxide fuel cells

机译:用于中温固体氧化物燃料电池的LSM-SDC复合阴极的制备

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摘要

Microstructure, interfacial resistance, and activation energy for composite cathodes consisting of 50 wt% (La0.85Sr0.15)(0.9)MnO3-delta (LSM) and 50 wt% Sm0.2Ce0.8O1.90 (SDC) were studied for intermediate-temperature solid oxide fuel cells based on SDC electrolytes. Microstructure and interfacial resistance were greatly influenced by the characteristics of starting powder and temperatures sintering the electrodes. Optimum sintering temperatures were 1100 and 950 A degrees C, respectively, for electrodes with SDC prepared using oxalate coprecipitation technique (OCP) and glycine-nitrate process (GNP). Area-specific resistances determined using impedance spectroscopy were 0.47 and 0.92 Omega cm(2) at 800 A degrees C for LSM-SDC/OCP and LSM-SDC/GNP, respectively. The high electrochemical performance is attributed to small grain size, high porosity, and high in-plane electrical conductivity of composite cathode, demonstrating the dramatic effects of microstructure on electrode performance. To increase the electrode performance, it is critical to enhance the diffusion rate of oxygen species.
机译:研究了由50 wt%(La0.85Sr0.15)(0.9)MnO3-δ(LSM)和50 wt%Sm0.2Ce0.8O1.90(SDC)组成的复合阴极的微观结构,界面电阻和活化能SDC电解质的高温固体氧化物燃料电池。初始粉末的特性和烧结电极的温度极大地影响了微观结构和界面电阻。对于使用草酸盐共沉淀技术(OCP)和硝酸甘氨酸工艺(GNP)制备的SDC电极,最佳烧结温度分别为1100和950A。对于800摄氏度,使用LSM-SDC / OCP和LSM-SDC / GNP,使用阻抗光谱仪确定的比表面积电阻分别为0.47和0.92 Omega cm(2)。高电化学性能归因于复合阴极的小粒径,高孔隙率和高面内电导率,证明了微观结构对电极性能的巨大影响。为了提高电极性能,提高氧气种类的扩散速率至关重要。

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