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磺化碳纳米管的引入提高了 Nafion 膜的质子电导率和热稳定性。

Enhancement in Proton Conductivity and Thermal Stability in Nafion Membranes Induced by Incorporation of Sulfonated Carbon Nanotubes.

机构信息

Key Laboratory of Nuclear Solid State Physics Hubei Province, School of Physics and Technology , Wuhan University , Wuhan 430072 , China.

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing , Wuhan University of Technology , Wuhan 430070 , China.

出版信息

ACS Appl Mater Interfaces. 2018 Apr 25;10(16):14026-14035. doi: 10.1021/acsami.8b01513. Epub 2018 Apr 11.

Abstract

Proton exchange membrane fuel cell (PEMFC) is one of the most promising green power sources, in which perfluorinated sulfonic acid ionomer-based membranes (e.g., Nafion) are widely used. However, the widespread application of PEMFCs is greatly limited by the sharp degradation in electrochemical properties of the proton exchange membranes under high temperature and low humidity conditions. In this work, the high-performance sulfonated carbon nanotubes/Nafion composite membranes (Su-CNTs/Nafion) for the PEMFCs were prepared and the mechanism of the microstructures on the macroscopic properties of membranes was intensively studied. Microstructure evolution in Nafion membranes during water uptake was investigated by positron annihilation lifetime spectroscopy, and results strongly showed that the Su-CNTs or CNTs in Nafion composite membranes significantly reinforced Nafion matrices, which influenced the development of ionic-water clusters in them. Proton conductivities in Su-CNTs/Nafion composite membranes were remarkably enhanced due to the mass formation of proton-conducting pathways (water channels) along the Su-CNTs. In particular, these pathways along Su-CNTs in Su-CNTs/Nafion membranes interconnected the isolated ionic-water clusters at low humidity and resulted in less tortuosity of the water channel network for proton transportation at high humidity. At a high temperature of 135 °C, Su-CNTs/Nafion membranes maintained high proton conductivity because the reinforcement of Su-CNTs on Nafion matrices reduced the evaporation of water molecules from membranes as well as the hydrophilic Su-CNTs were helpful for binding water molecules.

摘要

质子交换膜燃料电池(PEMFC)是最有前途的绿色电源之一,其中全氟磺酸离子聚合物基膜(例如 Nafion)被广泛应用。然而,PEMFC 的广泛应用受到很大限制,因为质子交换膜在高温低湿条件下电化学性能急剧下降。在这项工作中,制备了用于 PEMFC 的高性能磺化碳纳米管/ Nafion 复合膜(Su-CNTs/Nafion),并深入研究了微观结构对膜宏观性能的影响机制。通过正电子湮没寿命谱研究了 Nafion 膜在吸水过程中的微观结构演变,结果强烈表明 Su-CNTs/Nafion 复合膜中的 Su-CNTs 或 CNTs 显著增强了 Nafion 基质,从而影响了其中离子水簇的发展。由于质子导电途径(水通道)沿着 Su-CNTs 大量形成,Su-CNTs/Nafion 复合膜中的质子电导率显著提高。特别是,这些 Su-CNTs 中的路径在 Su-CNTs/Nafion 膜中连接了低湿度下的孤立离子水簇,从而在高湿度下减少了质子传输水通道网络的曲折度。在 135°C 的高温下,Su-CNTs/Nafion 膜保持了高质子电导率,因为 Su-CNTs 对 Nafion 基质的增强减少了水分子从膜中的蒸发,并且亲水性的 Su-CNTs 有助于结合水分子。

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