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Multiple Length Scale Characterization of Doped Lanthanum Manganate Composite Cathodes

机译:掺杂镧锰复合阴极的多个长度表征

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Composite cathodes extend the electrochemically active region for solid oxide fuel cells (SOFCs). The complex microstructural and chemical composition of composite cathodes often make them difficult to fully characterize. The active regions of composite cathodes were analyzed at various length scales using Focused Ion Beam/Scanning Electron Microscope (FIB/SEM) and Transmission Electron Microscope (TEM) techniques, to verify the effect of calcium doping on microstructure and interfacial stability. Dual beam FIB/SEM three-dimensional (3-D) reconstructions provided micron-level information on porosity, surface area and tortuosity while the TEM provided nanometer-level two-dimensional (2-D) chemical characterization of the interface between the cathode and electrolyte. These characterization techniques were applied on two different calcium doped lanthanum manganite (LCM)-scandium stabilized zirconia (SCZ) composite cathodes.
机译:复合阴极延伸用于固体氧化物燃料电池(SOFC)的电化学活性区域。复合阴极的复杂微观结构和化学成分通常使它们难以完全表征。使用聚焦离子束/扫描电子显微镜(FIB / SEM)和透射电子显微镜(TEM)技术以各种长度尺度分析复合阴极的有源区,以验证钙掺杂对微观结构和界面稳定性的影响。双光束FIB / SEM三维(3-D)重建提供了关于孔隙率,表面积和曲折的微米级信息,而TEM提供了阴极之间的界面的纳米级二维(2-D)化学表征。电解质。将这些表征技术应用于两种不同钙掺杂镧锰锰(LCM) - 稳定的氧化锆(SCZ)复合阴极。

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