纳米纤维素
木质素磺酸盐
电解质
聚合物
材料科学
化学工程
高分子科学
燃料电池
离子
聚合物电解质
纳米技术
高分子化学
纤维素
化学
有机化学
复合材料
木质素
离子电导率
工程类
电极
物理化学
作者
Carla Vilela,João D. Morais,Ana C. Q. Silva,Daniel Muñoz‐Gil,Filipe M. Figueiredo,Armando J. D. Silvestre,Carmen S. R. Freire
出处
期刊:Nanomaterials
[Multidisciplinary Digital Publishing Institute]
日期:2020-08-29
卷期号:10 (9): 1713-1713
被引量:34
摘要
The utilization of biobased materials for the fabrication of naturally derived ion-exchange membranes is breezing a path to sustainable separators for polymer electrolyte fuel cells (PEFCs). In this investigation, bacterial nanocellulose (BNC, a bacterial polysaccharide) and lignosulfonates (LS, a by-product of the sulfite pulping process), were blended by diffusion of an aqueous solution of the lignin derivative and of the natural-based cross-linker tannic acid into the wet BNC nanofibrous three-dimensional structure, to produce fully biobased ion-exchange membranes. These freestanding separators exhibited good thermal-oxidative stability of up to about 200 °C, in both inert and oxidative atmospheres (N2 and O2, respectively), high mechanical properties with a maximum Young’s modulus of around 8.2 GPa, as well as good moisture-uptake capacity with a maximum value of ca. 78% after 48 h for the membrane with the higher LS content. Moreover, the combination of the conducting LS with the mechanically robust BNC conveyed ionic conductivity to the membranes, namely a maximum of 23 mS cm−1 at 94 °C and 98% relative humidity (RH) (in-plane configuration), that increased with increasing RH. Hence, these robust water-mediated ion conductors represent an environmentally friendly alternative to the conventional ion-exchange membranes for application in PEFCs.
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