He Guangwei, Li Zongyu, Li Yifan, Li Zhen, Wu Hong, Yang Xinlin, Jiang Zhongyi
Key Laboratory for Green Chemical Technology of Ministry of Education, School of Chemical Engineering and Technology, Tianjin University , Tianjin 300072, China.
ACS Appl Mater Interfaces. 2014 Apr 23;6(8):5362-6. doi: 10.1021/am500626f. Epub 2014 Apr 8.
Zwitterionic microcapsules (ZMCs) based on sulfobetaine with tunable hierarchical structures, superior water retention properties, and high proton conduction capacities are synthesized via precipitation polymerization. The incorporation of ZMCs into a Nafion matrix renders the composite membranes with significantly enhanced proton conductivity especially under low humidity. The composite membrane with 15 wt % ZMC-I displayed the highest proton conductivity of 5.8 × 10(-2) S cm(-1) at 40 °C and 20% relative humidity after 90 min of testing, about 21 times higher than that of the Nafion control membrane. The increased proton conductivity is primarily attributed to the versatile roles of ZMCs as water reservoirs and proton conductors for rendering a stable water environment and an additional proton conduction pathway within the membranes. This study may contribute to the rational design of water-retaining and proton-conducting materials.
通过沉淀聚合合成了基于磺基甜菜碱的具有可调层次结构、优异保水性能和高质子传导能力的两性离子微胶囊(ZMCs)。将ZMCs掺入Nafion基体中,使复合膜的质子传导率显著提高,尤其是在低湿度条件下。含15 wt% ZMC-I的复合膜在40°C和20%相对湿度下测试90分钟后,显示出最高质子传导率5.8×10(-2) S cm(-1),比Nafion对照膜高约21倍。质子传导率的提高主要归因于ZMCs作为储水库和质子导体的多种作用,从而在膜内提供稳定的水环境和额外的质子传导途径。本研究可能有助于合理设计保水和质子传导材料。