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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Thermally sprayed high-performance porous metal-supported solid oxide fuel cells with nanostructured La0.6Sr0.4Co0.2Fe0.8O3-delta cathodes
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Thermally sprayed high-performance porous metal-supported solid oxide fuel cells with nanostructured La0.6Sr0.4Co0.2Fe0.8O3-delta cathodes

机译:具有纳米结构的La0.6Sr0.4Co0.2Fe0.8O3-δ阴极的热喷涂高性能多孔金属支撑固体氧化物燃料电池

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While porous metal-supported solid oxide fuel cells (PMS-SOFCs) have potential to dramatically reduce the cost while enhancing the durability of SOFC technology, the available fabrication processes are still cumbersome and unsuitable for commercial applications. Here, we report our findings in exploring low-cost, additive, thermal spray processes suitable for large-scale manufacturing of PMS-SOFCs. The additive fabrication process starts with a porous metal support, on which a porous nickel-based anode layer and a dense electrolyte membrane are sequentially deposited. Then, a nanostructured La0.6Sr0.4Co0.2Fe0.8O3-delta (LSCF) cathode layer is applied using a liquid precursor high velocity oxygen fuel flame (LP-HVOF) spraying process. The polarization resistance of the LSCF cathode is reduced to 0.15 Omega cm2 at 600 degrees C and 0.025 Omega cm(2) at 750 degrees C. The PMS-SOFCs display excellent performance, demonstrating peak power densities of 0.23, 0.65, 1.1, and 1.5 W cm(-2) at 500, 600, 700, and 750 degrees C, respectively, while maintaining impressive stability (no observable change for more than 600 h at 650 degrees C). Our results suggest that thermal spraying has potential to be a low-cost and flexible process suitable for large-scale fabrication of commercial PMS-SOFCs.
机译:尽管多孔金属支撑的固体氧化物燃料电池(PMS-SOFC)有潜力在显着降低成本的同时提高SOFC技术的耐用性,但可用的制造工艺仍然很繁琐且不适用于商业应用。在这里,我们将报告我们的发现,以探索适用于大规模生产PMS-SOFC的低成本,添加剂,热喷涂工艺。增材制造过程始于多孔金属载体,其上依次沉积了多孔镍基阳极层和致密电解质膜。然后,使用液体前驱体高速氧燃料火焰(LP-HVOF)喷涂工艺涂覆纳米结构的La0.6Sr0.4Co0.2Fe0.8O3-δ(LSCF)阴极层。 LSCF阴极的极化电阻在600摄氏度下降低至0.15Ωcm2,在750摄氏度下降低至0.025Ωcm(2)。PMS-SOFC显示出卓越的性能,证明其峰值功率密度为0.23、0.65、1.1和1.5 W cm(-2)分别在500、600、700和750摄氏度下保持稳定的稳定性(在650摄氏度下600 h以上未观察到变化)。我们的结果表明,热喷涂有可能成为一种低成本,灵活的工艺,适合大规模制造商用PMS-SOFC。

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