Advanced microstructure characterization and microstructural evolution of porous cermet electrodes in solid oxide cells: A comprehensive review

Wenyue Yang , Zehua Pan , Zhenjun Jiao , Zheng Zhong , Ryan O'Hayre
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引用次数: 0

Abstract

Solid oxide cells (SOCs), capable of interconverting electrical and chemical energy, have emerged as one of the key technologies for the future multi-energy complementary grid. However, the commercialization of SOCs is hindered by poor long-term stability, attributed in large part to the microstructural evolution of the electrodes, which results in the loss of active reaction sites, blockage of gas transport pathways, and degradation of mechanical properties. Owing to recently developed three-dimensional (3D) microstructure reconstruction techniques, the microstructural evolution of SOC electrodes can now be investigated quantitatively. This review highlights insights gained from studies of the microstructural evolution of porous cermet SOC electrodes during long-term operation and redox cycling, and the corresponding effects on electrochemical and mechanical performance, with particular attention to investigations using 3D reconstruction technologies. The influencing parameters and the possible strategies to mitigate microstructure evolution-induced degradation are also summarized. The challenges and opportunities for the future development of stable and active SOC electrode microstructures are analyzed, and the corresponding prospects for commercial application are provided.
固体氧化物电池中多孔金属陶瓷电极的先进微结构表征和微结构演化:综述
能够相互转换电能和化学能的固体氧化物电池(SOC)已成为未来多能源互补电网的关键技术之一。然而,SOC 的商业化受到长期稳定性差的阻碍,这在很大程度上归因于电极微结构的演变,导致活性反应位点的丧失、气体传输通道的堵塞以及机械性能的下降。由于最近开发了三维(3D)微结构重建技术,现在可以对 SOC 电极的微结构演变进行定量研究。本综述重点介绍多孔金属陶瓷 SOC 电极在长期运行和氧化还原循环过程中的微观结构演变,以及对电化学和机械性能的相应影响,尤其关注使用三维重建技术进行的研究。此外,还总结了影响参数以及缓解微结构演变引起的降解的可能策略。分析了未来开发稳定、活性 SOC 电极微结构所面临的挑战和机遇,并提供了相应的商业应用前景。
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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CiteScore
7.90
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