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Interdiffusion and Charge Transport Across Surface-Modified Current Collectors in Planar SOFCs

机译:平面SOFC中跨表面修饰集电器的互扩散和电荷传输

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Current collectors are a key component of planar SOFCs, separating air and fuel supplied onto the electrodes and connecting the cells in series. One of main challenges in the SOFC technology development is to suppress degradation processes, often associated with the interconnect materials, and to provide low contact resistivity in oxidizing atmospheres. The present work is focused on the studies of near-surface interdiffusion phenomena in Crofer 22 APU ferritic steel interconnects with Ni-based protective layers. Particular emphasis was centered on the area-specific resistance (ASR) between the current collectors and La_(0.8)Sr_(0.2)MnO_3 (LSM) cathodes, which exhibit time dependencies governed by the protective interlayer composition and interface microstructure alterations. The ASR changes, tested during over 30,000 hours at atmospheric oxygen pressure, can be described in terms of a model assuming that the current across the interconnector | LSM interface is essentially controlled by electron transfer via the interfacial Schottky barrier. The experimental observations validate this approach, explaining the junction resistivity and Schottky barrier height variations as a result of metal interdiffusion between the current collector and Ni-based protective coating.
机译:集电器是平面SOFC的关键组件,可将供应到电极上的空气和燃料分离并串联连接电池。 SOFC技术开发中的主要挑战之一是抑制通常与互连材料相关的降解过程,并在氧化气氛中提供低接触电阻率。目前的工作集中在研究具有Ni基保护层的Crofer 22 APU铁素体钢互连中的近表面相互扩散现象。特别强调的重点是集电器和La_(0.8)Sr_(0.2)MnO_3(LSM)阴极之间的面积比电阻(ASR),这显示出时间依赖性,该时间依赖性受保护性中间层组成和界面微观结构的变化控制。 ASR变化在大气氧气压力下超过30,000小时内进行了测试,可以通过以下模型来描述:假设流经互连器的电流| LSM界面本质上是通过界面肖特基势垒通过电子转移来控制的。实验观察证实了这种方法,解释了由于集电器和镍基保护层之间的金属相互扩散而导致的结电阻率和肖特基势垒高度变化。

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