首页> 外文OA文献 >High-Performance La0.5Ba0.5Co1/3Mn1/3Fe1/3O3−δ-BaZr1−zYzO3−δ Cathode Composites via an Exsolution Mechanism for Protonic Ceramic Fuel Cells
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High-Performance La0.5Ba0.5Co1/3Mn1/3Fe1/3O3−δ-BaZr1−zYzO3−δ Cathode Composites via an Exsolution Mechanism for Protonic Ceramic Fuel Cells

机译:高性能LA0.5Ba0.5Co1 / 3MN1 / 3FE1 / 3O3-Δ-BAZR1-ZYZO3-Δ阴极复合通过用于质子陶瓷燃料电池的展开机理

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摘要

A novel exsolution process was used to fabricate complex all-oxide nanocomposite cathodes for Protonic Ceramic Fuel Cells (PCFCs). The nanocomposite cathodes with La0.5Ba0.5Co1/3Mn1/3Fe1/3O3−δ-BaZr1−zYzO3−δ nominal composition were prepared from a single-phase precursor via an oxidation-driven exsolution mechanism. The exsolution process results in a highly nanostructured and intimately interconnected percolating network of the two final phases, one proton conducting (BaZr1−zYzO3−δ) and one mixed oxygen ion and electron conducting (La0.5Ba0.5Co1/3Mn1/3Fe1/3O3−δ), yielding excellent cathode performance. The cathode powder is synthesized as a single-phase cubic precursor by a modified Pechini route followed by annealing at 700 °C in N2. The precursor phase is exsolved into two cubic perovskite phases by further heat treatment in air. The phase composition and chemical composition of the two phases were confirmed by Rietveld refinement. The electrical conductivity of the composites was measured and the electrochemical performance was determined by impedance spectroscopy of symmetrical cells using BaZr0.9Y0.1O2.95 as electrolyte. Our results establish the potential of this exsolution method where a large number of different cations can be used to design composite cathodes. The La0.5Ba0.5Co1/3Mn1/3Fe1/3O3−δ-BaZr0.9Y0.1O2.95 composite cathode shows the best performance of 0.44 Ω∙cm2 at 600 °C in 3% moist synthetic air.
机译:用于制造用于质子陶瓷燃料电池(PCFC)的复杂全氧化物纳米复合材料阴极的新型exolution方法。通过氧化驱动驱动的exsolution机制从单相前体制制备具有LA0.5BA0.5CO1 / 3MCO1 / 3FE1 / 3O3-Δ-BAZR1- ZYZO3-δ标称组合物的纳米复合材料。 exolution过程导致两个最终相的高纳米结构和紧密的渗透网络,一个质子传导(Bazr1-zyzo3-δ)和一个混合氧离子和电子传导(La0.5ba0.5co1 / 3mn1 / 3fe1 / 3o3- δ),产生优异的阴极性能。通过改性的Pechini路线作为单相立方前体合成阴极粉末,然后在N 2中在700℃下退火。通过进一步热处理在空气中进一步热处理将前体相渗透到两个立方钙钛矿相中。通过RIETVELD细化证实了两相的相组成和化学组成。测量复合材料的电导率,通过使用BaZr0.9月份的对称电池的阻抗光谱作为电解质来测定电化学性能。我们的结果建立了该exolution方法的潜力,其中大量不同的阳离子可用于设计复合阴极。 LA0.5BA0.5CO1 / 3MN1 / 3FE1 / 3O3-Δ-BAZR0.9Y0.1O2.95复合阴极显示在3%潮湿的合成空气中为600°C的最佳性能为0.44Ω∙cm2。

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