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Optimization of ScSZ/GDC bilayer thin film electrolyte for anodic aluminum oxide supported low temperature solid oxide fuel cells

机译:用于阳极氧化铝的SCSZ / GDC双层薄膜电解质的优化负载低温固体氧化物燃料电池

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摘要

Due to the poor chemical stability of CeO2-based materials, doped CeO2 electrolytes are generally used as a stabilized ZrO2 protection layer/doped CeO2 electrolyte bilayer structure. Since the ionic conductivity of stabilized ZrO2 materials is lower than that of doped CeO2 materials, the thickness of the ZrO2 protective layer needs to be optimized. Thus, in this study, nano-porous anodic aluminum oxide template based scandia stabilized zirconia (ScSZ)/gadolinia doped ceria (GDC) bilayer electrolyte low temperature solid oxide fuel cells (LT-SOFCs) are successfully fabricated and investigated. The optimized thickness of the ScSZ protection layer is revealed by physical and electrochemical characterizations to maximize the performance of LT-SOFCs. The 160 nm ScSZ/400 nm GDC bilayer electrolyte LT-SOFC achieves a maximum power density of 252mW . cm(-2) and an open circuit voltage of 1.02 V OCV at 450 degrees C.
机译:由于CEO2基材料的化学稳定性差,掺杂的CEO2电解质通常用作稳定的ZrO2保护层/掺杂CeO2电解质双层结构。 由于稳定化ZrO2材料的离子电导率低于掺杂CeO 2材料的离子导电性,因此需要优化ZrO2保护层的厚度。 因此,在本研究中,成功地制造并研究了纳米多孔阳极氧化铝氧化钪模板的鳞片稳定氧化锆(SCSZ)/ gadolinia掺杂的二氧化碳(GDC)双层电解质低温固体氧化物燃料电池(LT-SOFC)。 通过物理和电化学表征揭示了SCSZ保护层的优化厚度,以最大限度地提高LT-SOFC的性能。 160NM SCSZ / 400nm GDC双层电解液LT-SOFC实现了252mW的最大功率密度。 CM(-2)和450℃下的1.02 V OCV的开路电压。

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