Guo Xinrui, Zhang Zhongxin, Liu Zhanyan, Huang Hui, Zhang Chunlei, Rao Huaxin
College of Chemistry and Materials Science, Jinan University, Guangzhou 510632, China.
The First Affiliated Hospital of Jinan University, Guangzhou 510632, China.
Nanomaterials (Basel). 2024 Jul 17;14(14):1217. doi: 10.3390/nano14141217.
Non-fluorinated chitosan-based proton exchange membranes (PEMs) have been attracting considerable interest due to their environmental friendliness and relatively low cost. However, low proton conductivity and poor physicochemical properties have limited their application in fuel cells. In this work, a reinforced nanofiller (sulfonated CS/GO, S-CS/GO) is accomplished, for the first time, via a facile amidation and sulfonation reaction. Novel chitosan-based composite PEMs are successfully constructed by the incorporation of the nanofiller into the chitosan matrix. Additionally, the effects of the type and amount of the nanofillers on physicochemical and electrochemical properties are further investigated. It is demonstrated that the chitosan-based composite PEMs incorporating an appropriate amount of the nanofillers (9 wt.%) exhibit good membrane-forming ability, physicochemical properties, improved proton conductivity, and low methanol permeability even under a high temperature and low humidity environment. When the incorporated amounts of S-CS/GO are 9 wt.%, the proton conductivity of the composite PEMs was up to 0.032 S/cm but methanol permeability was decreased to 1.42 × 10 cm/s. Compared to a pristine CS membrane, the tensile strength of the composite membrane is improved by 98% and the methanol permeability is reduced by 51%.
非氟化壳聚糖基质子交换膜(PEMs)因其环境友好性和相对较低的成本而备受关注。然而,低质子传导率和较差的物理化学性质限制了它们在燃料电池中的应用。在这项工作中,首次通过简便的酰胺化和磺化反应制备了一种增强型纳米填料(磺化壳聚糖/氧化石墨烯,S-CS/GO)。通过将纳米填料掺入壳聚糖基质中,成功构建了新型壳聚糖基复合质子交换膜。此外,还进一步研究了纳米填料的类型和用量对物理化学和电化学性质的影响。结果表明,掺入适量纳米填料(9 wt.%)的壳聚糖基复合质子交换膜即使在高温低湿环境下也表现出良好的成膜能力、物理化学性质、提高的质子传导率和低甲醇渗透率。当S-CS/GO的掺入量为9 wt.%时,复合质子交换膜的质子传导率高达0.032 S/cm,而甲醇渗透率降至1.42×10 cm/s。与原始壳聚糖膜相比,复合膜的拉伸强度提高了98%,甲醇渗透率降低了51%。