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Characterization of electrode structures and the related performance of direct methanol fuel cells

机译:直接甲醇燃料电池的电极结构表征和相关性能

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The performance of membrane electrode assemblies (MEAs) in fuel cells is substantially affected by the structures of the electrodes. An increase of about 25% in power performance was achieved merely by controlling the pressure of hot press in the MEA fabrication process for a given Pt loading, instead of by employing pore formers and heat treatment-a widely accepted method-to modify the structures of the electrode. The microstructures of the different hot-pressed electrodes were examined by transmission electron microscopy, scanning electron microscopy, and small angle X-ray scattering to assess the effect of the pressure on the structures of the electrodes. Based on experimental observations, the improved performance of the MEA is attributed to the porosity of the cathode electrode, in which a network of macrofissures and sub-microfissures allows air to penetrate the electrode. Emphasis is also placed on the relationship between the total porosity of the electrodes and the MEA performance. Results of this study demonstrate that the specific power density nearly doubles when the total porosity increased from 57% to 76%. Also, the MEAs mounted in an air-breathing DMFC small pack were fabricated in-house to supply power for a mobile phone.
机译:燃料电池中的膜电极组件(MEA)的性能基本上受电极结构的影响。仅通过在给定的Pt负载下控制MEA制造过程中的热压压力,而不是通过使用成孔剂和热处理(一种广为接受的方法)来修改MOSFET的结构,即可提高功率性能约25%。电极。通过透射电子显微镜,扫描电子显微镜和小角度X射线散射检查不同热压电极的微观结构,以评估压力对电极结构的影响。基于实验观察,MEA的性能提高归因于阴极电极的孔隙率,其中大裂缝和亚微裂缝网络使空气能够穿透电极。重点还放在电极的总孔隙率与MEA性能之间的关系上。这项研究的结果表明,当总孔隙率从57%增加到76%时,比功率密度几乎翻倍。同样,安装在可呼吸DMFC小包装中的MEA是在内部制造的,可为移动电话供电。

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