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首页> 外文期刊>International journal of hydrogen energy >Porous/dense bilayer BaZr_(0.8)Y_(0.2)O_(3-δ) electrolyte matrix fabricated by tape casting combined with solid-state reactive sintering for protonic ceramic fuel cells
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Porous/dense bilayer BaZr_(0.8)Y_(0.2)O_(3-δ) electrolyte matrix fabricated by tape casting combined with solid-state reactive sintering for protonic ceramic fuel cells

机译:多孔/致密双层BAZR_(0.8)Y_(0.2)O_(3-δ)电解质基质由带铸造的胶带铸造,与固态反应烧结用于质子陶瓷燃料电池

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Perovskite-type yttrium-doped barium zirconate (BZY) has been considered as attractive electrolyte material for protonic ceramic fuel cells (PCFCs) due to its high bulk proton conductivity, excellent chemical stability and mechanical robustness. However, it requires very hash sintering conditions to obtain a dense ceramic, which will be unfavourable to the fabrication of anode-supported PCFCs. In this study, new cell structure based on porous/dense bilayer BaZr0.8Y0.2O3-delta (BZY) electrolyte matrix was designed for PCFCs, facilitating the densification of electrolyte thin film and the nanostructured anode preparation by impregnation. The matrix was fabricated by bilayer co-tape casting combined with solidstate reactive sintering from the starting powders of BaCO3, ZrO2 and Y2O3 as well as NiO as sintering aid and graphite as pore former. The effects of graphite content on the microstructure of porous electrolyte layer (PEL) and the fuel cell performance were investigated. When the graphite content was 40 g in 165 g starting powders, the obtained PEL had the highest porosity and suitable shrinkage rate. With 20 wt% impregnated NiO anode, the single cell based on porous/dense bilayer BZY electrolyte matrix with 40 g graphite in 165 g PEL starting powders achieved the best performance with a maximum power density of 184mWcm(-2) at 650 degrees C and operated with a stable output voltage of 0.72 V for 20 h at a constant current density of 100 mA cm(-2) during H-2/ambient air operation. The results indicate that the design and fabrication of porous/dense bilayer BZY electrolyte matrix is promising for the development of cost-effective PCFCs. (c) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:由于其高散装质子电导率,优异的化学稳定性和机械稳健性,钙钛矿型钇型掺杂钇钡锆(BZY)被认为是用于质子陶瓷燃料电池(PCFC)的有吸引力的电解质材料。然而,它需要非常散列烧结条件以获得致密的陶瓷,这将不利于制造阳极支持的PCFC。在该研究中,设计了基于多孔/致密的双层BaZr0.8毫到0.2O3-Δ(BZY)电解质基质的新细胞结构用于PCFC,便于通过浸渍致密化电解质薄膜和纳米结构阳极制备。基质由双层合作铸造,联合来自Baco3,ZrO2和Y2O3的起始粉末以及NiO作为烧结助剂和石墨作为孔前烧成助剂的固体反应性烧结。研究了石墨含量对多孔电解质层(PEL)微观结构的影响及燃料电池性能。当石墨含量在165g开始粉末中为40g时,所获得的PEL具有最高的孔隙率和合适的收缩率。具有20wt%浸渍的NiO阳极,基于多孔/致密双层BZY电解质基质的单电池在165g PEL起始粉末中具有40g石墨,在650摄氏度下最大功率密度为184mWcm(-2)的最佳性能。在H-2 /环境空气操作期间,在恒定电流密度为100 mA cm(-2)的恒定电流密度下,在稳定的输出电压下操作。结果表明,多孔/致密双层BZY电解质基质的设计和制造是对经济高效的PCFC的开发的开发。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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