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Characterization of the electrode and electrolyte interfaces of LSGM-based SOFCs

机译:基于LSGM的SOFC的电极和电解质界面的表征

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LSGM is known to have a critical limit in terms of its application due to its chemical reactivity with other unit cell components. In particular, the formation of a highly resistive La-Sr-Ga-O phase at the interface of the anode and electrolyte poses a major obstacle toward the application of LSGM-based SOFCs. In this study, we investigated the interfacial reactions in LSGM-based SOFCs under various fabrication conditions in order to identify a means of avoiding or diminishing undesirable interfacial reactions. The electrical properties and phase composition of all reaction products were analyzed with the DC 4-point probes technique and X-ray diffraction. Microstructural evolution due to the chemical reactions between unit cell components was characterized with Environmental Scanning Electron Microscopy and Energy Dispersive X-ray Spectroscopy. According to the analysis of the interfacial reaction, a serious reaction zone exists, critically increasing the internal ohmic resistance of the cells. Moreover, this interfacial reaction decreases the OCV (open cell voltage) and consequently deteriorates the unit cell performance. Possible approaches to solving this reaction problem are reducing the heat-treatment temperature or introducing an effective buffering layer to prohibit interfacial reaction. (c) 2006 Elsevier B.V. All rights reserved.
机译:已知由于其与其他晶胞成分的化学反应性,LSGM在其应用方面有一个关键的限制。特别地,在阳极和电解质的界面处形成高电阻的La-Sr-Ga-O相构成了基于LSGM的SOFC的应用的主要障碍。在这项研究中,我们调查了在各种制造条件下基于LSGM的SOFC中的界面反应,以确定避免或减少不良界面反应的方法。用DC 4点探针技术和X射线衍射分析所有反应产物的电学性质和相组成。通过环境扫描电子显微镜和能量色散X射线光谱法表征了由于晶胞成分之间的化学反应引起的微结构演变。根据界面反应的分析,存在严重的反应区,从而严重增加了电池的内部欧姆电阻。而且,这种界面反应降低了OCV(开孔电压),因此使单电池性能劣化。解决该反应问题的可能方法是降低热处理温度或引入有效的缓冲层以阻止界面反应。 (c)2006 Elsevier B.V.保留所有权利。

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