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Effect of Microstructure on Ionic Conduction of Composite Electrolytes Consisting of Doped Ceria and Carbonates

机译:微观结构对掺杂二氧化铈和碳酸酯组成的复合电解质离子传导的影响

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Composite Electrolytes consisting of oxygen ion conductors and carbonates have received great attention for fuel cell application. The enhanced conduction was observed due to coionic (O~=/H~+) conduction during fuel cell operation under the H_2/air atmosphere. It is believed that highly mobile ions at the interface between doped ceria and carbonates may contribute to the high conductivity of the composite electrolyte. Thus, the electrical conduction of composite electrolytes with various types of microstructures was evaluated at temperatures ranging from 300°C to 700°C. For powder mixture, the composite samples were prepared by direct mixing of doped ceria and carbonate powders. For infiltrated composite, the carbonates were infiltrated into porous ceria substrates at 600°C. SEM, XRD, and Electrochemical Impedance Spectroscopy were employed to conduct microstructural, structural and impedance analyses. The electrical conduction behavior of composite electrolytes will be rationalized based on the pore size, pore distribution and interface area.
机译:由氧离子导体和碳酸盐组成的复合电解质对燃料电池应用感到非常关注。由于H_2 /空气气氛下的燃料电池操作期间泛抗(O = / H〜+)导通而观察到增强的导通。据信,掺杂二氧化铈和碳酸盐之间的界面处的高度移动离子可能有助于复合电解质的高导电性。因此,在300℃至700℃的温度下评价具有各种式微结构的复合电解质的电传导。对于粉末混合物,通过直接混合掺杂的二氧化铈和碳酸酯粉末制备复合样品。对于渗透复合材料,将碳酸盐渗透到600℃的多孔二氧化铈基材中。使用SEM,XRD和电化学阻抗谱进行微观结构,结构和阻抗分析。复合电解质的电传导行为将基于孔径,孔径分布和界面面积合理化。

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