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Synthesis and characterization of polymer electrolyte membranes with controlled ion transport properties.

机译:具有受控离子传输性能的高分子电解质膜的合成与表征。

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摘要

Ion-containing block copolymers hold promise as next-generation polymer electrolyte membrane (PEM) materials due to their capability to self-assemble into ordered nanostructures facilitating proton transport over a wide range of conditions. Ion-containing block copolymers, sulfonated poly(styrene- b-vinylidene fluoride-b-styrene), with varied degrees of sulfonation were synthesized. The synthetic strategy involved a new approach to chain-end functionalized poly(vinylidene fluoride) as a macro-initiator followed by atom transfer polymerization of styrene and sulfonation. Characterization of the polymers were extensively carried out by 1H and 19F nuclear magnetic resonance and Fouriertransform infrared spectroscopy, differential scanning calorimetry, and thermogravimetry analysis. Tapping mode atomic force microscopy and transmission electron microscopy were applied to study the phase separation and self-assembled morphology. Strong dependence of ion exchange capacity, water absorption, morphology and proton conductivity on the degree of sulfonation has been found. It has been observed that the conductivities of the block copolymers are considerably higher than the random copolymers of polystyrene and sulfonated polystyrene possessing similar ion exchange capacities.;Copolymers of vinylidene fluoride and perfluoro(4-methyl-3,6-dioxane-7-ene) sulfonyl fluoride containing amino end-groups were synthesized for the first time. The prepared aminoterminated polymers underwent cross-linking reactions with 1,3,5-benzene triisocyanate to form proton conductive networks. The chain-end crosslinked fluoropolymer membranes exhibited excellent thermal, hydrolytic and oxidative stabilities. The ion exchange capacity, water uptake, the state of absorbed water, and transport properties of the membranes were found to be highly dependent upon the chemical composition of the copolymers. The cross-linked membranes showed extremely low methanol permeability, while maintaining high proton conductivity at the same order of magnitude as Nafion. This unique transport feature gave rise to exceedingly higher electrochemical selectivity in relation to Nafion. The selectivity characteristics have been rationalized based on the formation of restrained ionic domains and the state of the absorbed water within the membranes.;A series of new Nafion-based composite membranes were prepared via an in situ sol-gel reaction of 3-(trihydroxylsilyl) propane-1-sulfonic acid and solution casting method. The morphological structure, ion-exchange capacity, water uptake, proton conductivity, and methanol permeability of the resulting composite membranes were extensively investigated as functions of the content of sulfopropylated polysilsesquioxane filler, temperature, and relative humidity. Unlike the conventional Nafion/silica composites, the prepared membranes exhibit an increased water uptake and associated enhancement in proton conductivity compared to unmodified Nafion. In particular, considerably high proton conductivities at 80 and 120 °C under 30% relative humidity were demonstrated in the composite membranes, which are over 2 times greater than that of Nafion. In addition to a remarkable improvement in proton conductivity, the composite membranes displayed lower methanol permeability and superior electrochemical selectivity in comparison to the pure Nafion membrane.;A versatile and facile synthetic approach was developed for the preparation of a family of new ionomers with rigid aromatic backbones and pendant perfluorinated sulfonic acid groups. Variation in the chemical composition and structure of the new aromatic ionomers were performed to optimize PEM properties and fuel cell performance. The ionomers prepared from condensation polymerization of Sodium 1,1,2,2-tetrafluoro-2-(2',3',5',6'-tetrafluoro-phenoxy)- ethane sulfonate and bisphenol monomers, e.g. hydroquinone, 4,4'-biphenol, or their mixture with appropriate ratio, exhibited comparable or greater proton conductivity in relation to Nafion. New aromatic ionomers also showed other outstanding PEM properties, e.g. high Tg, low methanol permeability, excellent thermal and chemical stability and good mechanical properties. Initial fuel cell testing of these ionomer at elevated temperatures demonstrated superior performance to Nafion membrane, indicating great potential for use in high temperature fuel cells. (Abstract shortened by UMI.).
机译:含离子的嵌段共聚物有望成为下一代聚合物电解质膜(PEM)材料,因为它们具有自组装成有序的纳米结构的能力,可在各种条件下促进质子的传输。合成了具有不同磺化度的含离子嵌段共聚物,磺化聚(苯乙烯-b-偏二氟乙烯-b-苯乙烯)。合成策略涉及一种新方法,以链端官能化聚偏二氟乙烯为大分子引发剂,然后进行苯乙烯的原子转移聚合和磺化。通过1H和19F核磁共振和傅里叶变换红外光谱,差示扫描量热法和热重分析对聚合物进行了广泛的表征。攻丝模式原子力显微镜和透射电子显微镜用于研究相分离和自组装形态。已经发现离子交换能力,吸水率,形态和质子电导率对磺化度的强烈依赖性。已经发现,嵌段共聚物的电导率明显高于具有相似离子交换能力的聚苯乙烯和磺化聚苯乙烯的无规共聚物。偏二氟乙烯和全氟(4-甲基-3,6-二恶烷-7-烯)的共聚物首次合成了含氨基端基的磺酰氟。制备的氨基末端聚合物与1,3,5-苯三异氰酸酯发生交联反应,形成质子传导网络。链端交联的含氟聚合物膜表现出出色的热,水解和氧化稳定性。发现膜的离子交换容量,吸水率,吸收水的状态和传输性质高度依赖于共聚物的化学组成。交联的膜表现出极低的甲醇渗透性,同时保持与Nafion相同数量级的高质子传导性。相对于Nafion,这种独特的传输特征导致了更高的电化学选择性。通过限制离子域的形成和膜内吸收水的状态,使选择性特征合理化。通过3-(三羟基甲硅烷基)的原位溶胶-凝胶反应制备了一系列新型的Nafion基复合膜。 )-1-磺酸丙烷和溶液浇铸方法。作为磺丙基化聚倍半硅氧烷填料含量,温度和相对湿度的函数,广泛研究了所得复合膜的形态结构,离子交换容量,吸水率,质子传导率和甲醇渗透率。与传统的Nafion /二氧化硅复合材料不同,与未改性的Nafion相比,制得的膜显示出更高的吸水率和质子传导性的相关增强。特别是,在复合膜中,在80和120°C,相对湿度为30%的条件下,质子电导率非常高,是Nafion的2倍以上。除了显着改善质子电导率外,与纯Nafion膜相比,复合膜还显示出较低的甲醇渗透性和优异的电化学选择性。;开发了一种通用且简便的合成方法,用于制备一系列具有刚性芳烃的新型离聚物主链和全氟磺酸侧基。进行了新的芳香族离聚物的化学组成和结构变化,以优化PEM性能和燃料电池性能。由1,2,2,2-四氟-2-(2',3',5',6'-四氟-苯氧基)-乙烷磺酸钠和双酚单体的缩聚反应制得的离聚物。对苯二酚,4,4'-双酚或其适当比例的混合物,与Nafion相比,表现出可比或更高的质子传导率。新的芳族离聚物还显示出其他突出的PEM性能,例如高Tg,低甲醇渗透性,优异的热和化学稳定性以及良好的机械性能。这些离聚物在高温下的初始燃料电池测试显示出优于Nafion膜的性能,表明在高温燃料电池中具有巨大的潜力。 (摘要由UMI缩短。)。

著录项

  • 作者

    Xu, Kui.;

  • 作者单位

    The Pennsylvania State University.;

  • 授予单位 The Pennsylvania State University.;
  • 学科 Engineering Materials Science.;Plastics Technology.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 160 p.
  • 总页数 160
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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