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Optimisation of processing and microstructural parameters of LSM cathodes to improve the electrochemical performance of anode-supported SOFCs

机译:优化LSM阴极的工艺和微结构参数,以改善阳极负载的SOFC的电化学性能

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摘要

To improve the electrochemical performance of LSM-based anode-supported single cells, a systematic approach was taken for optimising processing and materials parameters. Four parameters were investigated in more detail: (1) the LSM/YSZ mass ratio of the cathode functional layer, (2) the grain size of LSM powder for the cathode current collector layer, (3) the thickness of the cathode functional layer and the cathode current collector layer, and (4) the influence of calcination of YSZ powder used for the cathode functional layer. Results from electrochemical measurements performed between 700 and 900 deg C with H_2 (3 vol.percent H_2O) as fuel gas and air as the oxidant showed that the performance was the highest using an LSM/YSZ mass ratio of 50/50. A further increase of the electrochemical performance was obtained by increasing the grain size of the outer cathode current collector layer: the highest performance was achieved with non-ground LSM powder. In addition, it was found that the thickness of the cathode functional layer and cathode current collector layer also affects the electrochemical performance, whereas no obvious detrimental effects occurred with the different qualities of YSZ powder for the cathode functional layer. The highest performance, i.e. 1.50 +- 0.05 Acm~(-2) at 800 deg C and 700 mV, was obtained with a cathode functional layer, characterised by an LSM/YSZ mass ratio of 50/50, a d_(90) of the LSM powder of 1.0 (mu n, non-calcined YSZ powder, and a thickness of about 30 (mu m, and a cathode current collector layer, characterised by d_(90) of the LSM powder of 26.0 mu m (non-ground), and a thickness of 50-60 mu m. Also interesting to note is that the use of non-ground LSM for the cathode current collector layer and non-calcined YSZ powder for the cathode functional layer obviously simplifies the production route of this type of fuel cell.
机译:为了提高基于LSM的阳极支撑单电池的电化学性能,采用了系统的方法来优化工艺和材料参数。更详细地研究了四个参数:(1)阴极功能层的LSM / YSZ质量比;(2)阴极集电层的LSM粉末的粒径;(3)阴极功能层的厚度;以及(4)用于正极功能层的YSZ粉末的煅烧的影响。在700至900摄氏度的温度下,以H_2(3体积百分比的H_2O)为燃料气体,空气为氧化剂进行的电化学测量结果表明,LSM / YSZ质量比为50/50时,性能最高。电化学性能的进一步提高是通过增加外部阴极集电体层的晶粒尺寸来实现的:使用未研磨的LSM粉末可获得最高的性能。另外,发现正极功能层和正极集电体层的厚度也影响电化学性能,而对于正极功能层,不同质量的YSZ粉末没有发生明显的有害作用。通过阴极功能层获得了最高性能,即在800℃和700 mV下的1.50±0.05 Acm〜(-2),其特征在于LSM / YSZ质量比为50/50,d_(90)为LSM粉末1.0(μn,未煅烧的YSZ粉末,厚度约30(μm),阴极集流体层,特征在于d_(90)的LSM粉末为26.0μm(非研磨) ),厚度为50-60微米。另外值得注意的是,在阴极集电器层上使用非研磨的LSM,在阴极功能层上使用非煅烧的YSZ粉末明显简化了这种类型的生产路线燃料电池。

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