Wang Liying, Wang Yuliang, Li Zhangnan, Li Tianyang, Zhang Ruyu, Li Jing, Liu Baijun, Lv Zhongyuan, Cai Weiwei, Sun Shuhui, Hu Wei, Lu Yunfeng, Zhu Guangshan
Faculty of Chemistry, Northeast Normal University, 5268 Renmin Street, Changchun, 130024, P. R. China.
Faculty of Chemistry, Jilin University, 2699 Qianjin Street, Changchun, 130012, P.R. China.
Adv Mater. 2023 Aug;35(33):e2303535. doi: 10.1002/adma.202303535. Epub 2023 Jul 6.
High-temperature proton-exchange-membrane fuel cells (HT-PEMFCs) can offer improved energy efficiency and tolerance to fuel/air impurities. The high expense of the high-temperature proton-exchange membranes (HT-PEMs) and their low durability at high temperature still impede their further practical applications. In this work, a phosphoric acid (PA)-doped porous aromatic framework (PAF-6-PA) is incorporated into poly[2,2'-(p-oxydiphenylene)-5,5'-benzimidazole] (OPBI) to fabricate novel PAF-6-PA/OPBI composite HT-PEMs through solution-casting. The alkaline nitrogen structure in PAF-6 can be protonated with PA to provide proton hopping sites, and its porous structure can enhance the PA retention in the membranes, thus creating fast pathways for proton transfer. The hydrogen bond interaction between the rigid PAF-6 and OPBI can also enhance the mechanical properties and chemical stability of the composite membranes. Consequently, PAF-6-PA/OPBI exhibits an optimal proton conductivity of 0.089 S cm at 200 °C, and peak power density of 437.7 mW cm (Pt: 0.3 mg cm ), which is significantly higher than that of the OPBI. The PAF-6-PA/OPBI provides a novel strategy for the practical application of PBI-based HT-PEMs.
高温质子交换膜燃料电池(HT-PEMFCs)能够提高能量效率,并增强对燃料/空气杂质的耐受性。然而,高温质子交换膜(HT-PEMs)的高成本以及它们在高温下较低的耐久性,仍然阻碍着它们的进一步实际应用。在这项工作中,将磷酸(PA)掺杂的多孔芳香框架(PAF-6-PA)掺入聚[2,2'-(对苯二酚)-5,5'-苯并咪唑](OPBI)中,通过溶液浇铸制备新型的PAF-6-PA/OPBI复合高温质子交换膜。PAF-6中的碱性氮结构可以被PA质子化以提供质子跳跃位点,并且其多孔结构可以增强PA在膜中的保留,从而为质子转移创造快速通道。刚性的PAF-6与OPBI之间的氢键相互作用还可以增强复合膜的机械性能和化学稳定性。因此,PAF-6-PA/OPBI在200°C时表现出0.089 S cm的最佳质子传导率,以及437.7 mW cm(Pt:0.3 mg cm)的峰值功率密度,这显著高于OPBI。PAF-6-PA/OPBI为基于PBI的高温质子交换膜的实际应用提供了一种新策略。