材料科学
纳米纤维素
超级电容器
纳米纤维
电容
气凝胶
超分子化学
聚苯胺纳米纤维
细菌纤维素
聚苯胺
纳米技术
导电体
导电聚合物
化学工程
纤维素
聚合物
电极
复合材料
分子
有机化学
化学
物理化学
工程类
聚合
作者
Duan‐Chao Wang,Hou‐Yong Yu,Dongming Qi,Mohankandhasamy Ramasamy,Juming Yao,Feng Tang,Kam Chiu Tam,Qing‐Qing Ni
标识
DOI:10.1021/acsami.9b06527
摘要
Nature employs supramolecular self-assembly to organize many molecularly complex structures. Based on this, we now report for the first time the supramolecular self-assembly of 3D lightweight nanocellulose aerogels using carboxylated ginger cellulose nanofibers and polyaniline (PANI) in a green aqueous medium. A possible supramolecular self-assembly of the 3D conductive supramolecular aerogel (SA) was provided, which also possessed mechanical flexibility, shape recovery capabilities, and a porous networked microstructure to support the conductive PANI chains. The lightweight conductive SA with hierarchically porous 3D structures (porosity of 96.90%) exhibited a high conductivity of 0.372 mS/cm and a larger area-normalized capacitance (Cs) of 59.26 mF/cm2, which is 20 times higher than other 3D chemically cross-linked nanocellulose aerogels, fast charge-discharge performance, and excellent capacitance retention. Combining the flexible SA solid electrolyte with low-cost nonwoven polypropylene and PVA/H2SO4 yielded a high normalized capacitance (Cm) of 291.01 F/g without the use of adhesive that was typically required for flexible energy storage devices. Furthermore, the supramolecular conductive aerogel could be used as a universal sensitive sensor for toxic gas, field sobriety tests, and health monitoring devices by utilizing the electrode material in lightweight supercapacitor and wearable flexible devices.
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