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首页> 外文期刊>Journal of Fuel Cell Science and Technology >Development of Micro- to Macropores in Conductive Polymer-Based Gas Diffusion Layers for Proton Exchange Membrane Fuel Cells
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Development of Micro- to Macropores in Conductive Polymer-Based Gas Diffusion Layers for Proton Exchange Membrane Fuel Cells

机译:质子交换膜燃料电池导电聚合物基气体扩散层中微孔到大孔的发展

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The aim of this work is to improve the porosity of gas diffusion layers (GDLs) for proton exchange membrane fuel cell electrodes. These GDLs are made by twin-screw extrusion process from conductive formulations composed of polyamide 11 (PA11 )/polystyrene (PS) as the polymer matrix phase and an appropriate mixture of carbon black (CB) and graphite (GR) as the conductive additives. Final GDL porosity, especially macroporosity, was generated by selective extraction of the PS phase using adequate solvents. Since the generation of pores was found to be directly related to blend morphology, several blend compositions were studied and small amounts (2-6 wt %) of montmorillonite (MMT) clay were used as compatibilizer to improve the dispersion of the PS phase inside the PA11. It was observed that, although GDL volume porosity was not or slightly affected by the addition of MMT compatibilizer, its pore specific surface area was clearly increased. For GDLs made from a blend composed of 65 wt % of PA11/PS (30/70) and 35 wt % of GB/GR (57/43), an increase from 53 m{sup}2/g (with no MMT) to around 75 m{sup}2/g (with 2 wt % MMT) was obtained. This improvement within the addition of MMT was attributed to the modification of the dispersion state of PS phase. Such modification led to a higher connectivity of pores and consequently more accessibility to the micro/mesopores of CB and GR. The major changes observed with the incorporation of MMT compatibilizer were obtained for the small pore sizes (in the range of 10-400 nm). Depending on MMT content, a considerable shift of pore size distribution in this range to smaller or higher values was obtained. Then the MMT compatibilization could be considered as an interesting route to tailor GDL porous properties.
机译:这项工作的目的是改善质子交换膜燃料电池电极的气体扩散层(GDL)的孔隙率。这些GDL通过双螺杆挤出工艺由导电配方制成,该导电配方由聚酰胺11(PA11)/聚苯乙烯(PS)作为聚合物基质相,以及炭黑(CB)和石墨(GR)的适当混合物作为导电添加剂组成。最终的GDL孔隙度,尤其是大孔隙度,是通过使用适当的溶剂选择性萃取PS相而产生的。由于发现孔的产生与共混物的形态直接相关,因此对几种共混物的组成进行了研究,并使用了少量(2-6 wt%)的蒙脱土(MMT)粘土作为增容剂,以改善PS相在树脂中的分散性。 PA11。观察到,尽管加入MMT增容剂对GDL的体积孔隙率没有影响或影响不大,但其孔隙比表面积却明显增加。对于由由65 wt%的PA11 / PS(30/70)和35 wt%的GB / GR(57/43)组成的混合物制成的GDL,从53 m {sup} 2 / g(无MMT)增加得到约75m {sup} 2 / g(具有2wt%的MMT)。添加MMT内的这种改善归因于PS相的分散状态的改变。这种修饰导致更高的孔连通性,并因此更容易接近CB和GR的微孔/中孔。对于小孔径(在10-400 nm范围内),通过加入MMT增容剂可以观察到主要变化。取决于MMT含量,获得了在该范围内孔径分布向较小或较高值的相当大的偏移。然后,MMT相容性可以被认为是调整GDL多孔性能的有趣途径。

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