Key Laboratory for Green Chemical Technology of Ministry of Education, School of Chemical Engineering and Technology, Tianjin University, Tianjin, 300072, China.
Collaborative Innovation Center of Chemical Science and Engineering (Tianjin), Tianjin, 300072, China.
Adv Mater. 2017 Jul;29(28). doi: 10.1002/adma.201605898. Epub 2017 Jun 6.
Solid electrolytes have attracted much attention due to their great prospects in a number of energy- and environment-related applications including fuel cells. Fast ion transport and superior mechanical properties of solid electrolytes are both of critical significance for these devices to operate with high efficiency and long-term stability. To address a common tradeoff relationship between ionic conductivity and mechanical properties, electrolyte membranes with proton-conducting 2D channels and nacre-inspired architecture are reported. An unprecedented combination of high proton conductivity (326 mS cm at 80 °C) and superior mechanical properties (tensile strength of 250 MPa) are achieved due to the integration of exceptionally continuous 2D channels and nacre-inspired brick-and-mortar architecture into one materials system. Moreover, the membrane exhibits higher power density than Nafion 212 membrane, but with a comparative weight of only ≈0.1, indicating potential savings in system weight and cost. Considering the extraordinary properties and independent tunability of ion conduction and mechanical properties, this bioinspired approach may pave the way for the design of next-generation high-performance solid electrolytes with nacre-like architecture.
固体电解质因其在包括燃料电池在内的许多能源和环境相关应用中的广阔前景而备受关注。对于这些设备来说,快速的离子传输和优异的机械性能对于其高效和长期稳定运行都至关重要。为了解决离子电导率和机械性能之间的常见权衡关系,报道了具有质子传导二维通道和珍珠层启发结构的电解质膜。由于将异常连续的二维通道和珍珠层启发的砖-泥结构集成到一个材料系统中,实现了前所未有的高质子电导率(80°C 时为 326 mS cm)和优异的机械性能(拉伸强度为 250 MPa)的结合。此外,该膜的功率密度高于 Nafion 212 膜,但重量仅约为其 1/10,表明在系统重量和成本方面可能具有潜在的节省。考虑到离子传导和机械性能的非凡性质和独立可调性,这种仿生方法可能为设计具有珍珠层状结构的下一代高性能固体电解质铺平道路。