Department of Chemical & Biochemical Engineering, Fujian Provincial Key Laboratory of Theoretical and Computational Chemistry, The College of Chemistry and Chemical Engineering, Xiamen University , Xiamen 361005, P. R. China.
ACS Appl Mater Interfaces. 2016 Sep 28;8(38):25279-88. doi: 10.1021/acsami.6b07711. Epub 2016 Sep 13.
With the intention of optimizing the performance of anion-exchange membranes (AEMs), a set of imidazolium-functionalized poly(arylene ether sulfone)s with densely distributed long flexible aliphatic side chains were synthesized. The membranes made from the as-synthesized polymers are robust, transparent, and endowed with microphase segregation capability. The ionic exchange capacity (IEC), hydroxide conductivity, water uptake, thermal stability, and alkaline resistance of the AEMs were evaluated in detail for fuel cell applications. Morphological observation with the use of atomic force microscopy and small-angle X-ray scattering reveals that the combination of high-local-density-type and side-chain-type architectures induces distinguished nanophase separation in the AEMs. The as-prepared membranes have advantages in effective water management and ionic conductivity over traditional main-chain polymers. Typically, the conductivity and IEC were in the ranges of 57.3-112.5 mS cm(-1) and 1.35-1.84 mequiv g(-1) at 80 °C, respectively. Furthermore, the membranes exhibit good thermal and alkaline stability and achieve a peak power density of 114.5 mW cm(-2) at a current density of 250.1 mA cm(-2). Therefore, the present polymers containing clustered flexible pendent aliphatic imidazolium promise to be attractive AEM materials for fuel cells.
为了优化阴离子交换膜 (AEM) 的性能,我们合成了一系列具有密集分布的长柔性脂肪侧链的咪唑功能化聚(芳基醚砜)。由这些聚合物制成的膜具有很强的韧性、高透明度和微相分离能力。详细评估了 AEM 的离子交换容量 (IEC)、氢氧化物电导率、吸水率、热稳定性和耐碱性,以用于燃料电池应用。原子力显微镜和小角 X 射线散射的形态观察表明,高局部密度型和侧链型结构的结合在 AEM 中引起了明显的纳米相分离。与传统的主链聚合物相比,所制备的膜在有效水分管理和离子电导率方面具有优势。通常,在 80°C 时,这些膜的电导率和 IEC 在 57.3-112.5 mS cm(-1)和 1.35-1.84 mequiv g(-1)之间。此外,这些膜表现出良好的热稳定性和耐碱性,在 250.1 mA cm(-2)的电流密度下达到 114.5 mW cm(-2)的峰值功率密度。因此,本研究中包含聚集的柔性脂肪侧链咪唑的聚合物有望成为燃料电池用有吸引力的 AEM 材料。