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Significance enhancement in the conductivity of core shell nanocomposite electrolytes

机译:核壳纳米复合电解质电导率的显着提高

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摘要

Today, there is great demand of electrolytes with high ionic conductivities at low operating temperatures for solid-oxide fuel cells. Therefore, a co-doped technique was used to synthesize a highly ionically conductive two phase nanocomposite electrolyte Sr/Sm–ceria–carbonate by a co-precipitation method. A significant increase in conductivity was measured in this co-doped Sr/Sm–ceria–carbonate electrolyte at 550 °C as compared to the more commonly studied samarium doped ceria. The fuel cell power density was 900 mW cm−2 at low temperature (400–580 °C). The composite electrolyte was found to have homogenous morphology with a core–shell structure using SEM and TEM. The two phase core–shell structure was confirmed using XRD analysis. The crystallite size was found to be 30–60 nm and is in good agreement with the SEM analysis. The thermal analysis was determined with DSC. The enhancement in conductivity is due to two effects; co-doping of Sr in samarium doped ceria and it's composite with carbonate which is responsible for the core–shell structure. This co-doped approach with the second phase gives promise in addressing the challenge to lower the operating temperature of solid oxide fuel cells (SOFC).
机译:如今,对于固体氧化物燃料电池,在低工作温度下具有高离子电导率的电解质有巨大需求。因此,采用共掺杂技术通过共沉淀法合成了具有高离子导电性的两相纳米复合电解质Sr / Sm-二氧化铈-碳酸盐。与更常研究的掺do二氧化铈相比,在550°C的这种共掺杂Sr / Sm-二氧化铈-碳酸盐电解质中,电导率显着增加。在低温(400–580°C)下,燃料电池的功率密度为900 mW cm-2。使用SEM和TEM发现复合电解质具有均匀的核壳结构形态。使用XRD分析确认了两相核-壳结构。发现微晶尺寸为30–60 nm,与SEM分析非常吻合。用DSC测定热分析。电导率的提高归因于两个效应。掺sa的二氧化铈中Sr的共掺杂,并且与碳酸盐形成核壳结构。这种与第二阶段共掺杂的方法有望解决降低固体氧化物燃料电池(SOFC)工作温度的挑战。

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