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Highly Conductive and Water-Swelling Resistant Anion Exchange Membrane for Alkaline Fuel Cells

机译:用于碱性燃料电池的高导电性和耐水膨胀阴离子交换膜

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摘要

To ameliorate the trade-off effect between ionic conductivity and water swelling of anion exchange membranes (AEMs), a crosslinked, hyperbranched membrane (C-HBM) combining the advantages of densely functionalization architecture and crosslinking structure was fabricated by the quaternization of the hyperbranched poly(4-vinylbenzyl chloride) (HB-PVBC) with a multiamine oligomer poly(N,N-Dimethylbenzylamine). The membrane displayed well-developed microphase separation morphology, as confirmed by small angle X-ray scattering (SAXS) and transmission electron microscopy (TEM). Moreover, the corresponding high ionic conductivity, strongly depressed water swelling, high thermal stability, and acceptable alkaline stability were achieved. Of special note is the much higher ratio of hydroxide conductivity to water swelling (33.0) than that of most published side-chain type, block, and densely functionalized AEMs, implying its higher potential for application in fuel cells.
机译:为了改善阴离子交换膜(AEM)的离子电导率和水溶胀之间的权衡效果,通过将超支化聚合物进行季铵化,制造了一种结合了密集功能化结构和交联结构优势的交联超支化膜(C-HBM)。 (4-乙烯基苄基氯)(HB-PVBC)与多胺低聚物聚(N,N-二甲基苄基胺)。如小角度X射线散射(SAXS)和透射电子显微镜(TEM)所证实,该膜显示出发达的微相分离形态。此外,获得了相应的高离子电导率,强烈抑制的水溶胀,高热稳定性和可接受的碱稳定性。特别值得注意的是,氢氧化物电导率与水溶胀的比率(33.0)要比大多数已公开的侧链类型,嵌段和致密功能化的AEM高得多,这表明其在燃料电池中的应用潜力更大。

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