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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Post-synthetic modification of porous materials: superprotonic conductivities and membrane applications in fuel cells
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Post-synthetic modification of porous materials: superprotonic conductivities and membrane applications in fuel cells

机译:多孔材料的合成后修饰:燃料电池中的超级化电导率和膜应用

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Proton exchange membrane fuel cells (PEMFCs) have attracted considerable attention and applications in the field of transportation because they achieve eco-friendly electricity generation with water as the only by-product. As the preferred solid electrolyte in PEMFCs, Nafion possesses various desirable attributes and high proton conductivity, but its prohibitive cost and practical limitations in operation are problematic. Recently, several types of porous platforms, including metal-organic frameworks (MOFs), covalent organic frameworks (COFs), porous organic polymers (POPs), and hydrogen-bonded organic frameworks (HOFs) have been deployed to develop conducting systems. Post-synthetic modification for porous platforms is a flagship smart methodology in membrane electrolyte fabrication for fuel cells that concurrently combines original and other desirable features that are complementary to each other and induce enhanced conductivity. Additionally, the introduction of proton conductive mixed matrix membranes, which has recently received considerable attention as a practical method to fabricate membranes, has inspired recent research trends. This review discusses post-synthetic modification-based proton conductors and their membranes in terms of design strategies, conduction mechanisms, and diverse diagnostic modalities for future electrolyte materials in fuel cell technology.
机译:质子交换膜燃料电池(PEMFC)引起了相当大的关注和应用,因为它们以水为唯一的副产品实现了环保发电。作为PEMFCs中优选的固体电解质,Nafion具有各种所需的属性和高质量的电导率,但其令人禁止的成本和操作的实际限制是有问题的。最近,已经部署了几种类型的多孔平台,包括金属 - 有机骨架(MOF),共价有机骨架(COF),多孔有机聚合物(POPs)和氢键合有机框架(HOF)以开发导电系统。多孔平台后的合成后改性是膜电解质制造的旗舰智能方法,用于燃料电池同时结合彼此互补的原始和其他所需特征并引起增强的导电性。另外,近期接受了质子导电混合基质膜作为制造膜的实用方法,最近受到了相当大的关注,启发了最近的研究趋势。本次审查在设计策略,传导机制和不同于燃料电池技术中的未来电解质材料方面的设计策略,传导机制和不同诊断方式方面讨论了基于后的修改的质子导体及其膜。

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