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首页> 外文期刊>Progress in Polymer Science >Sulfonated hydrocarbon membranes for medium-temperature and low-humidity proton exchange membrane fuel cells (PEMFCs)
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Sulfonated hydrocarbon membranes for medium-temperature and low-humidity proton exchange membrane fuel cells (PEMFCs)

机译:用于中温和低湿质子交换膜燃料电池(PEMFC)的磺化烃膜

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This review summarizes efforts in developing sulfonated hydrocarbon proton exchange membranes (PEMs) with excellent long-term electrochemical fuel cell performance in medium-temperature and/or low-humidity proton exchange membrane fuel cell (PEMFC) applications. Sulfonated hydrocarbon PEMs are alternatives to commercially available perfluorosulfonic acid ionomers (PFSA, e.g., Nation?) that inevitably lose proton conductivity when exposed to harsh operating conditions. Over the past few decades, a variety of approaches have been suggested to optimize polymer architectures and define post-synthesis treatments in order to further improve the properties of a specific material. Strategies for copolymer syntheses are summarized and future challenges are identified. Research pertaining to the sulfonation process, which is carried out in the initial hydrocarbon PEM fabrication stages, is first introduced. Recent synthetic approaches are then presented, focusing on the polymer design to enhance PEM performance, such as high proton conductivity even with a low ion exchange capacity (IEC) and high dimensional stability. Polymer chemistry methods for the physico-chemical tuning of sulfonated PEMs are also discussed within the framework of maximizing the electrochemical performance of copolymers in membrane-electrode assemblies (MEAs). The discussion will cover crosslinking, surface fluorination, thermal annealing, and organic-inorganic nanocomposite approaches.
机译:这篇综述总结了在中等温度和/或低湿度质子交换膜燃料电池(PEMFC)应用中开发具有优异的长期电化学燃料电池性能的磺化烃质子交换膜(PEM)的努力。磺化烃PEM是市售全氟磺酸离聚物(PFSA,例如,Nation?)的替代品,当暴露于苛刻的操作条件下时,不可避免地失去质子传导性。在过去的几十年中,已提出了各种方法来优化聚合物结构并定义合成后处理,以进一步改善特定材料的性能。总结了共聚物合成的策略,并确定了未来的挑战。首先介绍了有关磺化过程的研究,该研究是在最初的烃PEM制造阶段进行的。然后介绍了最新的合成方法,重点是提高PEM性能的聚合物设计,例如即使在低离子交换容量(IEC)和高尺寸稳定性的情况下仍具有高质子传导性。在最大化膜电极组件(MEA)中共聚物的电化学性能的框架内,还讨论了用于磺化PEM物理化学调节的聚合物化学方法。讨论将涵盖交联,表面氟化,热退火和有机无机纳米复合材料方法。

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