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Nanomaterials for Improving the Properties of Polymeric Electrolyte Membranes in Energy Managing Devices

机译:用于改善能量管理装置中聚合物电解质膜性能的纳米材料

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Nanomaterials are receiving great attention in terms of research and development over the past few years in Polymeric Electrolyte Membrane (PEM) for Fuel Cells and Electrolyzers applications. The addition of inorganic nanofillers (SiO_2, ZrO_2 and TiO_2), clays (montmorrillonite, bentonite, etc.), heteropolyacids (including cesium salts) and carbon nanotubes to the membrane structure have demonstrated to be ways of enhancing the system performance. In H_2-based PEMFC, the water retention capacity can be significantly increased, opening up the possibility of operating the system above the water boiling point under low humidity conditions without a dramatic drop in the performance. In Direct Alcohol Fuel Cell (DAFC), its application intends to address the detrimental alcohol crossover that depolarizes the cathode without inadmissibly depressing the membrane conductivity. Good results can be obtained when including SiO_2 and TiO_2 nanoparticles, metallic nanoparticles, zeolites and clays such as plain and sulfonated-montmorillonite. For high temperature PEMFC based on phosphoric acid-doped polybenzimdazole, the presence of the nanocomponents helps to achieve higher conductivities compared to the pristine material under severe anhydrous conditions, which is reflected in larger power density peaks. Finally, a section for the PEM electrolyzer depicts the importance of SiO_2 and TiO_2 nanoparticles for improving the performance of this system without the additional consumption of electricity by allowing the operation above 100℃.
机译:在过去的几年中,纳米材料在燃料电池和电解器应用的聚合物电解质膜(PEM)的研究与开发中受到了极大的关注。已证明向膜结构中添加无机纳米填料(SiO_2,ZrO_2和TiO_2),粘土(蒙脱土,膨润土等),杂多酸(包括铯盐)和碳纳米管是增强系统性能的方法。在基于H_2的PEMFC中,保水能力可以显着提高,这为在低湿度条件下在水沸点以上运行系统提供了可能,而性能却没有显着下降。在直接酒精燃料电池(DAFC)中,其应用旨在解决有害的酒精穿透问题,该问题会使阴极去极化而不会使膜的电导率降低。当包含SiO_2和TiO_2纳米粒子,金属纳米粒子,沸石和粘土(如纯蒙脱土和磺化蒙脱土)时,可以获得良好的结果。对于基于磷酸掺杂的聚苯并咪唑的高温PEMFC,与原始材料相比,在严格的无水条件下,纳米成分的存在有助于实现更高的电导率,这反映在更大的功率密度峰中。最后,PEM电解槽的一部分描述了SiO_2和TiO_2纳米颗粒对于通过允许在100℃以上的温度运行而无需额外消耗电能来改善该系统性能的重要性。

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