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首页> 外文期刊>Journal of Fuel Cell Science and Technology >Preparation of Highly Stable Ion Exchange Membranes by Radiation-Induced Graft Copolymerization of Styrene and Bis(vinyl phenyl)ethane Into Crosslinked Polytetrafluoroethylene Films
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Preparation of Highly Stable Ion Exchange Membranes by Radiation-Induced Graft Copolymerization of Styrene and Bis(vinyl phenyl)ethane Into Crosslinked Polytetrafluoroethylene Films

机译:苯乙烯和双(乙烯基苯基)乙烷辐射诱导的接枝共聚成交联聚四氟乙烯薄膜的制备高度稳定的离子交换膜

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We prepared novel ion exchange membranes for possible use in polymer electrolyte fuel cells (PEFCs) by the radiation-induced graft copolymerization of styrene and new crosslinker bis(vinyl phenyl)ethane (BVPE) into crosslinked polytetrafluoroethylene (cPTFE) films and subsequent sulfonation and then investigated their water uptake, proton conductivity, and stability in an oxidizing environment. In contrast to the conventional crosslinker, divinylbenzene (DVB), the degree of grafting of styrene/BVPE increased in spite of high crosslinker concentrations in the reacting solution (up to 70 mol %). Quantitative sulfonation of the aromatic rings in the crosslinked graft chains resulted in the preparation of membranes with a high ion exchange capacity that reached 2.9 meq/g. The bulk properties of the membranes were found to exceed those of Nafion membranes except for chemical stability. The emphasis was on the fact that the BVPE-crosslinked membranes exhibited the higher stability in the H2O2 solution at 60°C compared to the noncrosslinked and DVB-crosslinked ones, as well as decreased water uptake and reasonable proton conductivity. These results are rationalized by considering the reactivity between styrene and the crosslinker, which is an important factor determining the distribution of the crosslinks in the graft component. In the case of BVPE, the crosslinks at a high density were homogeneously incorporated even into the interior of the membrane because of its compatibility with styrene while the far too reactive DVB led to a crosslink formation only near the surface. The combination of both the cPTFE main chain and BVPE-based grafts, i.e., a perfect “double” crosslinking structure, is likely to effectively improve the membrane performances for PEFC applications.
机译:我们通过辐射诱导的苯乙烯与新型交联剂双(乙烯基苯基)乙烷(BVPE)的辐射诱导接枝共聚合为交联的聚四氟乙烯(cPTFE)膜,然后进行磺化,制备了可用于聚合物电解质燃料电池(PEFC)的新型离子交换膜。研究了它们的吸水率,质子传导性以及在氧化环境中的稳定性。与常规交联剂二乙烯基苯(DVB)相比,尽管反应溶液中交联剂浓度高(高达70摩尔%),但苯乙烯/ BVPE的接枝度却增加了。交联的接枝链中芳环的定量磺化导致制备了具有高达2.9meq / g的高离子交换容量的膜。除化学稳定性外,发现该膜的整体性能超过Nafion膜。重点在于以下事实:与未交联和DVB交联的膜相比,BVPE交联的膜在60°C的H2O2溶液中显示出更高的稳定性,并且吸水率降低,质子传导率降低。通过考虑苯乙烯与交联剂之间的反应性可以合理化这些结果,这是决定交联剂在接枝组分中分布的重要因素。在BVPE的情况下,由于其与苯乙烯的相容性,高密度的交联甚至均匀地掺入了膜的内部,而反应性太强的DVB仅在表面附近形成了交联。 cPTFE主链和基于BVPE的接枝物的结合,即完美的“双”交联结构,很可能有效地改善PEFC应用的膜性能。

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