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Effect of Dispersion Solvents in Catalyst Inks on the Performance and Durability of Catalyst Layers in Proton Exchange Membrane Fuel Cells

机译:催化剂油墨中分散溶剂对质子交换膜燃料电池中催化剂层性能和耐久性的影响

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Five different ionomer dispersions using water–isopropanol (IPA) and N -methylpyrrolidone (NMP) were investigated as ionomer binders for catalyst layers in proton exchange membrane fuel cells. The distribution of ionomer plays an important role in the design of high-performance porous electrode catalyst layers since the transport of species, such as oxygen and protons, is controlled by the thickness of the ionomer on the catalyst surface and the continuity of the ionomer and gas networks in the catalyst layer, with the transport of electrons being related to the continuity of the carbon particle network. In this study, the effect of solvents in ionomer dispersions on the performance and durability of catalyst layers (CLs) is investigated. Five different types of catalyst inks were used: (i) ionomer dispersed in NMP; (ii) ionomer dispersed in water–IPA; (iii) ionomer dispersed in NMP, followed by adding water–IPA; (iv) ionomer dispersed in water–IPA, followed by adding NMP; and (v) a mixture of ionomer dispersed in NMP and ionomer dispersed in water–IPA. Dynamic light scattering of the five dispersions showed different average particles sizes: ~0.40 μm for NMP, 0.91–1.75 μm for the mixture, and ~2.02 μm for water–IPA. The membrane-electrode assembly prepared from an ionomer dispersion with a larger particle size (i.e., water–IPA) showed better performance, while that prepared from a dispersion with a smaller particle size (i.e., NMP) showed better durability.
机译:研究了使用水-异丙醇(IPA)和N-甲基吡咯烷酮(NMP)的五种不同的离聚物分散体作为质子交换膜燃料电池催化剂层的离聚物粘合剂。离聚物的分布在高性能多孔电极催化剂层的设计中起着重要作用,因为诸如氧和质子之类的物质的传输受催化剂表面上离聚物的厚度以及离聚物的连续性和催化剂层中的气体网络,电子的传输与碳粒子网络的连续性有关。在这项研究中,研究了离聚物分散体中溶剂对催化剂层(CLs)的性能和耐久性的影响。使用了五种不同类型的催化剂油墨:(i)分散在NMP中的离聚物; (ii)分散在水中的离聚物-IPA; (iii)将离聚物分散在NMP中,然后加入水-IPA; (iv)将离聚物分散在水中-IPA,然后加入NMP; (v)分散在NMP中的离聚物和分散在水-IPA中的离聚物的混合物。五个分散体的动态光散射显示出不同的平均粒径:NMP为〜0.40μm,混合物为0.91-1.75μm,水–IPA为〜2.02μm。由较大粒径的离聚物分散体(即水– IPA)制备的膜电极组件表现出更好的性能,而由较小粒径的分散体(即NMP)制备的膜电极组件表现出更好的耐久性。

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