Review on Fe-based double perovskite cathode materials for solid oxide fuel cells

Manyi Xie, Changkun Cai, Xingyu Duan, Ke Xue, Hong Yang, Shengli An
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Abstract

As a clean and efficient energy conversion device, solid oxide fuel cells have been garnering attention due to their environmentally friendly and fuel adaptability. Consequently, they have become one of the current research directions of new energy. The cathode, as the electrochemical reaction site of an oxidation atmosphere in solid oxide fuel cells, plays a key role in determining the output performance. In recent years, the development of double perovskite cathode materials with mixed ionic and electronic conductors has made significant progress in intermediate-temperature (600-800 °C) fuel cells. These materials have the potential to deliver higher power densities and improved stability, making them promising candidates for future fuel cell applications. The Fe-based double perovskite structure cathode material has gained extensive attention due to its adjustable crystal structure and performance, as it has A(A’) or B(B’) positions in its AA’BB’O6 structure. This material has several advantages, such as high oxygen catalytic activity, low thermal expansion coefficient, and compatibility with the thermal expansion of the electrolyte. An increasing number of researchers have been exploring the performance reaction mechanism of double perovskite by modifying and adjusting its material microstructure, crystal structure, and electronic structure. In this paper, the research progress of LnBaFe2O5 and Sr2Fe2-xMoxO6 double perovskite cathode materials is reviewed to highlight the effects of various modification methods developed on electrochemical performance of these materials. Furthermore, the potential future research directions of double perovskite cathode materials are prospected.
关于用于固体氧化物燃料电池的铁基双过氧化物阴极材料的综述
作为一种清洁高效的能源转换装置,固体氧化物燃料电池因其环保性和燃料适应性而备受关注。因此,固体氧化物燃料电池已成为当前新能源的研究方向之一。阴极作为固体氧化物燃料电池中氧化气氛的电化学反应场所,在决定输出性能方面起着关键作用。近年来,具有离子和电子混合导体的双包晶阴极材料的开发在中温(600-800 ℃)燃料电池领域取得了重大进展。这些材料有可能提供更高的功率密度和更高的稳定性,使其成为未来燃料电池应用的理想候选材料。铁基双包晶结构阴极材料因其晶体结构和性能可调而受到广泛关注,因为它在 AA'BB'O6 结构中具有 A(A')或 B(B')位置。这种材料具有多种优点,如氧催化活性高、热膨胀系数低、与电解液的热膨胀相容等。越来越多的研究人员通过改变和调整双包晶石的材料微观结构、晶体结构和电子结构,探索其性能反应机理。本文综述了 LnBaFe2O5 和 Sr2Fe2-xMoxO6 双包晶阴极材料的研究进展,重点介绍了所开发的各种改性方法对这些材料电化学性能的影响。此外,还展望了双包晶阴极材料未来的潜在研究方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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