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Preparation and Property of LSGM-Carbonate Composite Electrolyte for Low Temperature Solid Oxide Fuel Cell

机译:低温固体氧化物燃料电池用LSGM-碳酸盐复合电解质的制备及性能

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The LSGM-carbonate composite electrolyte is a new type of medium and low temperature SOFC electrolyte material, which has great application potential. In this paper, the molten salt infiltration method was used to prepare the LSGM-carbonate composite electrolyte. The results of SEM test proved that the molten salt infiltration method was more appropriate in preparing the LSGM-carbonate composite electrolyte comparing with direct mixing method. The influence of the type and content of pore forming agent was investigated. The result showed that the polymethyl methacrylate (PMMA) had an excellent pore forming performance and could create interconnected pore structures successfully in LSGM matrix. The XRD result indicated that the LSGM-carbonate composite electrolyte showed almost a single LSGM phase and the carbonate remained glass state. Four terminal method was used to measure the conductivity. The result showed that the conductivity of the LSGM-carbonate composite electrolytes was increased by one order of magnitude compared with pure LSGM. The conductivity of LSGM-carbonate composite electrolytes increased firstly and then decreased with the increasing of PMMA. The LSGM-carbonate composite electrolyte prepared by 25 wt.% PMMA addition has the highest conductivity during the whole range of test temperature and reached 0.3 S.cm~(-1) at 600°C.
机译:LSGM-碳酸盐复合电解质是一种新型的中低温SOFC电解质材料,具有很大的应用潜力。本文采用熔盐渗透法制备了LSGM-碳酸盐复合电解质。 SEM测试结果表明,与直接混合法相比,熔盐渗透法更适合制备LSGM-碳酸盐复合电解质。研究了成孔剂的种类和含量的影响。结果表明,聚甲基丙烯酸甲酯(PMMA)具有优异的成孔性能,可以在LSGM基体中成功地形成相互连接的孔结构。 XRD结果表明,LSGM-碳酸盐复合电解质几乎显示出单一的LSGM相,碳酸盐保持玻璃态。使用四端子法测量电导率。结果表明,与纯LSGM相比,LSGM-碳酸盐复合电解质的电导率提高了一个数量级。 LSGM-碳酸盐复合电解质的电导率随PMMA的增加先增大后减小。通过添加25重量%的PMMA制备的LSGM-碳酸盐复合电解质在整个测试温度范围内具有最高的电导率,并且在600℃下达到0.3S.cm·(-1)。

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