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Electrochemical performance of sol-gel derived La0.6S0.4CoO3-δ cathode material for proton-conducting fuel cell: A comparison between simple and advanced cell fabrication techniques

机译:用于质子导电燃料电池的溶胶 - 凝胶的电化学性能La0.6S0.4COO3-δ阴极材料:简单和先进的细胞制造技术比较

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摘要

In this study, the effects of different fabrication techniques on the electrochemical performance of solgel derived La0.6Sr0.4CoO3-δ (LSC) cathode material for intermediate temperature proton-Conducting fuel cells were investigated. Single-phase, sub-micron LSC powder was used to prepare cathode slurries by a simple grinding-stirring (G-S) technique and an advanced ball milling-triple roll milling (BM-TRM) technique. The prepared G-S and BM-TRM cathode slurries were brush painted and screen printed, respectively, onto separate BaCe0.54Zr0.36Y0.1O2.95 (BCZY) proton-conducting electrolytes to fabricate symmetrical cells of LSC|BCZY|LSC. The thickness of LSC cathode layer prepared by brush painting and screen printing was 17 ± 0.5 µm and 7 ± 0.5 µm, and the surface porosity of the layers was 32% and 27%, respectively. Electrochemical impedance spectroscopy analysis revealed that the layer deposited by screen printing had lower area specific resistance measured at 700 °C (0.25 Ω cm2) than the layer prepared by brush painting of G-S slurry (1.50 Ω cm2). The enhanced LSC cathode performance of the cell fabricated using BM-TRM assisted with screen printing is attributed to the improved particle homogeneity and network in the prepared slurry and the enhanced particle connectivity in the screen printed film.
机译:在这项研究中,不同的制造技术上的溶胶 - 凝胶的电化学性能的影响导出中间温度质子传导燃料电池La0.6Sr0.4CoO3-δ(LSC)的阴极材料进行了研究。单相,使用亚微米粉末LSC通过简单的粉碎,搅拌(G-S)技术和先进的球磨-三辊研磨(BM-TRM)技术制备阴极浆料。将制得的G-S和BM-TRM阴极浆料,刷涂和丝网印刷,分别到单独BaCe0.54Zr0.36Y0.1O2.95(BCZY)质子传导性的电解质来制造LSC的对称细胞| BCZY | LSC。 LSC阴极层的厚度制备的刷涂和丝网印刷为17±0.5微米和7±0.5微米,所述层的表面孔隙率分别为32%和27%。电化学阻抗谱分析表明,通过丝网印刷沉积的层具有较低的面积比电阻在700℃(0.25Ωcm 2)的比刷涂G-稠泥浆(1.50Ω平方厘米)的制得的层测量。使用BM-TRM丝网印刷归因于所制备的浆液中的改进的粒子的均匀性和网络并且在屏幕印刷膜增强粒子的连接辅助制作的细胞的增强的LSC阴极性能。

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