Lee Gicheon, Kim Jinsol, Park Jungho, Jeon Yukwon, Park Jinwon, Shul Yong-Gun
Department of Chemical and Biomolecular Engineering, Yonsei University, 50 Yonsei-ro, Seodaemun-gu, Seoul 120-749, Korea.
Department of Environmental and Energy Engineering, Yonsei University, 1 Yonseidae-gil, Wonju 26493, Korea.
Nanomaterials (Basel). 2022 Apr 6;12(7):1230. doi: 10.3390/nano12071230.
Nano-composite filler has received attention for the application to high temperature and low humidity polymer electrolyte membrane (PEM) in fuel cell systems. Heteropolyacids (HPAs) are one of the most attractive materials because of their conductive and thermally stable properties, but have practical limitations due to their high solubility. We investigated the stabilization of HPA on imidazole modified mesoporous silica as a nano-composite filler. The role of mesoporous silica as a support for imidazole and the distribution of chemically bonded HPA on the surface were both confirmed through physical and chemical analysis. The developed nano-composite was utilized to a PEM as a proton conducting filler, cast with commercial Aquivion solution. Changing the HPA: imidazole ratio and HPA wt%, the composite membrane of Im10/PWA6/Si-MCM-41 (PWA 10 wt%) resulted in higher proton conductivity compared to the non-modified membrane at all operation conditions, especially at high temperature (140 °C) and low relative humidity (RH 10%), with values of 0.3530 and 0.0241 S/m, respectively. A single cell test at H/Air also showed the effect of adding the nano-composite filler at a wide range of temperatures, which outperformed a single cell with a pristine membrane even at an extremely low humidity condition.
纳米复合填料因应用于燃料电池系统中的高温低湿聚合物电解质膜(PEM)而受到关注。杂多酸(HPAs)因其导电和热稳定性能而成为最具吸引力的材料之一,但由于其高溶解性而存在实际局限性。我们研究了将HPA稳定在咪唑改性的介孔二氧化硅上作为纳米复合填料。通过物理和化学分析证实了介孔二氧化硅作为咪唑载体的作用以及化学键合的HPA在表面的分布。将开发的纳米复合材料用作质子传导填料用于PEM,与商用Aquivion溶液浇铸在一起。改变HPA与咪唑的比例以及HPA的重量百分比,Im10/PWA6/Si-MCM-41(PWA为10重量%)的复合膜在所有操作条件下,尤其是在高温(140°C)和低相对湿度(RH 10%)下,与未改性膜相比具有更高的质子传导率,分别为0.3530和0.0241 S/m。在H/空气条件下的单电池测试也显示了在很宽温度范围内添加纳米复合填料的效果,即使在极低湿度条件下,其性能也优于使用原始膜的单电池。