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Proton conducting membranes based on sulfonated aromatic polymers for PEM fuel cells: synthesis and properties

机译:用于PEM燃料电池的基于磺化芳族聚合物的质子传导膜:合成与性能

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摘要

The proton exchange membrane is the heart of polymer electrolyte membrane (PEM) fuel cells. In order to obtain good fuel cells performances, the membranes should exhibit at temperatures above 100°C and low relative humidity morphological, hydrolytic and mechanical stability. In this thesis two different strategies for the synthesis of proton conducting membranes based on sulfonated aromatic polymers have been explored: hybrid organic-inorganic nanocomposites and formation of inter-chain links as a result of heat treatments.The use of hybrid materials allows to exploit the synergistic effect of the simultaneous presence of an organic component, the ionomer, and an inorganic component. In particular, a mixture of S-PEEK with high degree of sulfonation, as majority compound, and a silylated polymer based on PPSU as minority component was studied. The S-PEEK is used to ensure high conductivity, while the Si-PPSU ensures good mechanical stability (anchor phase). Hybrid nanocomposites based on S-PEEK with dispersed functionalized TiO2 were also studied.The second strategy followed, the synthesis of crosslinked polymers, was very positive. In particular it was observed for the first time, that it was possible to obtain inter-chain sulfone bonds using appropriate thermal treatments in the presence of DMSO as solvent casting. It was proved that the membranes obtained are able to withstand water up to 145°C without significant swelling and maintain mechanical stability and good conductivity.The membranes were characterized using several techniques, including: thermo-gravimetric analysis, static and dynamic mechanical measurements, water absorption measurements, either by immersion or in vapour phase, IR and NMR spectroscopy, dielectric spectroscopy and impedance analysis.
机译:质子交换膜是聚合物电解质膜(PEM)燃料电池的心脏。为了获得良好的燃料电池性能,膜应在高于100°C的温度下表现出较低的相对形态,水解和机械稳定性。本文探讨了两种基于磺化芳族聚合物的质子传导膜合成策略:有机-无机杂化杂化材料和热处理形成链间键。同时存在有机成分,离聚物和无机成分的协同效应。特别地,研究了具有高磺化度的S-PEEK作为主要化合物和基于PPSU作为少数成分的甲硅烷基化聚合物的混合物。 S-PEEK用于确保高导电性,而Si-PPSU用于确保良好的机械稳定性(锚固相)。还研究了基于S-PEEK与分散的功能化TiO2的杂化纳米复合材料。第二种策略是交联聚合物的合成非常积极。特别地,首次观察到在DMSO作为溶剂浇铸的情况下,使用适当的热处理可以获得链间砜键。事实证明,所获得的膜能够承受高达145°C的水而不会显着溶胀,并保持机械稳定性和良好的导电性。膜的表征采用了多种技术,包括:热重分析,静态和动态力学测量,水吸收测量,可以通过浸入或气相测量,IR和NMR光谱,介电光谱和阻抗分析。

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    Sgreccia Emanuela;

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  • 年度 2010
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