用于固体氧化物燃料电池的钴基阴极材料的热膨胀偏移量

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引用次数: 0

摘要

含钴的包晶阴极与常用电解质之间的热膨胀系数(TECs)不匹配是开发持久性固体氧化物燃料电池(SOFCs)的一大挑战。在这项研究中,我们建议在高热膨胀(HTE)阴极 LaBa0.5Sr0.5Co2O5 + δ(LBSC)中引入低热膨胀(LTE)阴极 (Y0.5Ca0.5)0.8In0.2BaCo3ZnO7 + δ (YCIBCZ),以制备 YCIBCZ-LBSC复合阴极。在 LBSC 氧化物中加入 YCIBCZ 氧化物后,阴极和电解液之间的热匹配良好,从而有效改善了 SOFC 的电化学性能。TEC 从 LBSC 的 27.2 × 10-6 K-1 显著降低到 YCIBCZ70-LBSC30 的 12.9 × 10-6 K-1。在所研究的所有阴极成分中,YCIBCZ50-LBSC50 显示出相对较低的特定区域电阻值(800 °C 时为 0.011 Ω cm2)和较高的功率密度(800 °C 时为 571 mW cm-2)。这些结果应与阴极/电解质界面的 TEC 值、总电导率的大小以及复合阴极的电催化活性之间的平衡有关。总之,它为开发用于 SOFC 的完全热膨胀兼容的高活性钴基阴极提供了一个新思路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A thermal-expansion offset to cobalt-based cathode materials for solid oxide fuel cells

A thermal-expansion offset to cobalt-based cathode materials for solid oxide fuel cells

The mismatch in thermal expansion coefficients (TECs) between cobalt-containing perovskite cathodes and commonly used electrolytes is a significant challenge to the development of durable solid oxide fuel cells (SOFCs). In this investigation, we propose to introduce low thermal expansion (LTE) cathode (Y0.5Ca0.5)0.8In0.2BaCo3ZnO7 + δ (YCIBCZ) to high thermal expansion (HTE) cathode LaBa0.5Sr0.5Co2O5 + δ (LBSC) to prepare YCIBCZ–LBSC composite cathodes. The addition of YCIBCZ oxide to LBSC oxide results in good thermal matching between the cathode and electrolyte, effectively improving the electrochemical performance of SOFCs. The TEC is significantly reduced from 27.2 × 10−6 K−1 for LBSC to 12.9 × 10−6 K−1 for YCIBCZ70–LBSC30. For all the cathode compositions studied, YCIBCZ50–LBSC50 exhibits a relatively low area-specific resistance value (0.011 Ω cm2 at 800 °C) and a high power density (571 mW cm−2 at 800 °C). These results should be associated with the balance of the TEC values of cathode/electrolyte interfaces, the magnitude of the total conductivity, and the electrocatalaytic activity of composite cathodes. In all, it provides a novel idea to develop fully thermal expansion compatible and highly active cobalt-based cathodes for SOFCs.

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