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首页> 外文期刊>Journal of solid state electrochemistry >Development of novel LSM/GDC composite and electrochemical characterization of LSM/GDC based cathode-supported direct carbon fuel cells
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Development of novel LSM/GDC composite and electrochemical characterization of LSM/GDC based cathode-supported direct carbon fuel cells

机译:新型LSM / GDC复合材料的开发和基于LSM / GDC的阴极支撑直接碳燃料电池的电化学表征

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(La_(0.8)Sr_(0.2))_(0.95)MnO_(3?δ) (LSM)–Gd_(0.1)Ce_(0.9)O_(2?δ) (gadolinium-doped ceria, GDC) composite cathode material was developed and characterized in terms of chemical stability, sintering behaviour, electrical conductivity, mechanical strength and microstructures to assess its feasibility as cathode support applications in cathode-supported fuel cell configurations. The sintering inhibition effect of LSM, in the presence of GDC, was observed and clearly demonstrated. The mechanical characterization of developed composites revealed that fracture behaviour is directly affected by pore size distribution. The Weibull strength distribution showed that for bimodal pore size distribution, two different fracture rates were present. Furthermore, the contiguity of LSM and GDC grains was calculated with image analysis, and correlation of microstructural features with mechanical and electrical properties was established. Subsequently, an LSM/GDC-based cathodesupported direct carbon fuel cell (DCFC) with Ni/ScSZ (scandia-stabilised zirconia) anode was successfully fabricated via slurry coating and co-firing techniques. The microstructures of electrodes and electrolyte layers were observed to confirm the desired morphology after co-sintering, and a single cell was electrochemically characterized in solid oxide fuel cell (SOFC) and DCFCmode with ambient air as oxidant. The higher values of open-circuit voltage indicated that the electrolyte layer prepared by vacuum slurry coating is dense enough. The corresponding peak power densities at 850 °C were 450 and 225 mW cm~(?2) in SOFC and DCFC mode, respectively. Electrochemical impedance spectroscopy was carried out to observe electrode polarization and ohmic resistance.
机译:(La_(0.8)Sr_(0.2))_(0.95)MnO_(3δδ)(LSM)–Gd_(0.1)Ce_(0.9)O_(2δδ)(掺d二氧化铈,GDC)复合阴极材料为在化学稳定性,烧结性能,电导率,机械强度和微结构方面进行了开发和表征,以评估其作为阴极支撑燃料电池配置中阴极支撑应用的可行性。在存在GDC的情况下,观察并清楚地证明了LSM的烧结抑制作用。发达复合材料的机械特性表明,断裂行为直接受孔径分布的影响。威布尔强度分布表明,对于双峰孔径分布,存在两种不同的断裂速率。此外,通过图像分析计算了LSM和GDC晶粒的连续性,并建立了微观结构特征与机械和电气性能的相关性。随后,通过浆料涂覆和共烧技术成功地制造了具有Ni / ScSZ(scan稳定氧化锆)阳极的基于LSM / GDC的阴极支撑直接碳燃料电池(DCFC)。共烧结后,观察电极和电解质层的微观结构以确认所需的形态,并在固体氧化物燃料电池(SOFC)和DCFCmode中以环境空气为氧化剂对单个电池进行了电化学表征。开路电压的较高值表明通过真空浆料涂布制备的电解质层足够致密。在SOFC和DCFC模式下,在850°C时相应的峰值功率密度分别为450和225 mW cm〜(?2)。进行电化学阻抗光谱法以观察电极极化和欧姆电阻。

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