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首页> 外文期刊>Journal of power sources >Hybrid approach combining multiple characterization techniques and simulations for microstructural analysis of proton exchange membrane fuel cell electrodes
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Hybrid approach combining multiple characterization techniques and simulations for microstructural analysis of proton exchange membrane fuel cell electrodes

机译:混合方法结合多种表征技术和模拟对质子交换膜燃料电池电极的微观结构进行分析

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摘要

The cost and performance of proton exchange membrane fuel cells strongly depend on the cathode electrode due to usage of expensive platinum (Pt) group metal catalyst and sluggish reaction kinetics. Development of low Pt content high performance cathodes requires comprehensive understanding of the electrode microstructure. In this study, a new approach is presented to characterize the detailed cathode electrode microstructure from nm to gm length scales by combining information from different experimental techniques. In this context, nano-scale X-ray computed tomography (nano-CT) is performed to extract the secondary pore space of the electrode. Transmission electron microscopy (TEM) is employed to determine primary C particle and Pt particle size distributions. X-ray scattering, with its ability to provide size distributions of orders of magnitude more particles than TEM, is used to confirm the TEM-determined size distributions. The number of primary pores that cannot be resolved by nano-CT is approximated using mercury intrusion porosimetry. An algorithm is developed to incorporate all these experimental data in one geometric representation. Upon validation of pore size distribution against gas adsorption and mercury intrusion porosimetry data, reconstructed ionomer size distribution is reported. In addition, transport related characteristics and effective properties are computed by performing simulations on the hybrid microstructure. Published by Elsevier B.V.
机译:质子交换膜燃料电池的成本和性能在很大程度上取决于阴极电极,这是由于使用了昂贵的铂(Pt)基金属催化剂和反应动力学迟钝。低Pt含量高性能阴极的开发需要对电极微结构的全面了解。在这项研究中,通过结合来自不同实验技术的信息,提出了一种新方法来表征从nm到gm长度尺度的详细阴极电极微观结构。在这种情况下,执行纳米级X射线计算机断层扫描(nano-CT),以提取电极的次级孔隙空间。透射电子显微镜(TEM)用于确定初级C颗粒和Pt颗粒尺寸分布。 X射线散射可以提供比TEM多几个数量级的颗粒尺寸分布,因此可以用来确定TEM确定的尺寸分布。纳米CT无法解决的主要孔隙数量是使用压汞法测得的。开发了一种算法,将所有这些实验数据合并为一个几何表示。在验证了针对气体吸附和汞侵入孔隙率法数据的孔径分布后,据报道重建了离聚物的粒度分布。另外,通过对混合微结构进行仿真来计算与运输有关的特性和有效特性。由Elsevier B.V.发布

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