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首页> 外文期刊>Journal of the American Chemical Society >Molded, high surface area polymer electrolyte membranes from cured liquid precursors
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Molded, high surface area polymer electrolyte membranes from cured liquid precursors

机译:由固化液体前体制成的高表面积聚合物电解质膜

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Polymer electrolyte membranes (PEMs) for fuel cells have been synthesized from easily processable, 100% curable, low molecular weight reactive liquid precursors that are photochemically cured into highly proton conductive solid membranes. The liquid precursors were directly cured into membranes of desired dimensions without the need for further processing steps such as melt extrusion or solvent casting. By employing chemical cross-linking, high proton conductivities can be achieved through the incorporation of significant levels of acidic groups without rendering the material water-soluble, which plagues commonly used non-cross-linked polymers. Fabrication of membrane electrode assemblies (MEAs) from these PEMs resulted in fuel cells that outperformed those based on commercial materials. Moreover, these liquid precursors enabled the formation of three-dimensional, patterned PEMs with high fidelity, micronscale features by using soft lithographic/micromolding techniques. The patterned membranes provided a larger interfacial area between the membrane and catalyst layer than standard flat PEMs. MEAs composed of the patterned membranes demonstrated higher power densities over that of flat ones without an increase in the macroscopic area of the fuel cells. This can potentially miniaturize fuel cells and promote their application in portable devices.
机译:用于燃料电池的聚合物电解质膜(PEM)是由易于加工,可100%固化,低分子量的反应性液体前体合成的,该前体被光化学固化成高质子传导性固体膜。将液体前体直接固化成所需尺寸的膜,而无需进一步的加工步骤,例如熔融挤出或溶剂浇铸。通过采用化学交联,可以通过引入大量酸性基团而使材料不溶于水来实现高质子电导率,这困扰了常用的非交联聚合物。由这些PEM制造膜电极组件(MEA)导致燃料电池的性能优于基于商业材料的燃料电池。此外,这些液体前体通过使用软光刻/微成型技术,能够形成具有高保真度,微米级特征的三维图案化PEM。与标准的平面PEM相比,带图案的膜在膜和催化剂层之间提供了更大的界面面积。由带图案的膜组成的MEA显示出比平坦的膜更高的功率密度,而不会增加燃料电池的宏观面积。这有可能使燃料电池小型化并促进其在便携式设备中的应用。

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