超级电容器
材料科学
电解质
导电体
电容
电导率
离子电导率
极限抗拉强度
纤维素
多孔性
羧甲基纤维素
复合材料
弯曲
纳米技术
储能
化学工程
细菌纤维素
离子
离子键合
电极
自愈水凝胶
电阻率和电导率
作者
Yao Yu,Haifeng Li,Peixuan Li,Yunyi Tan,Yan Zhang,Jifen Wang
标识
DOI:10.1002/ente.202501301
摘要
The lignocellulosic skeleton is obtained through delignification and alkali treatment, which not only preserves the inherent anisotropy of wood but also introduces naturally occurring ion channels. The resulting cellulose skeleton is integrated with a poly(vinyl alcohol)/polyacrylamide double network to fabricate a wood‐derived double‐network hydrogel. To ensure ionic conductivity while maintaining excellent mechanical properties, a sodium sulfate ion solution and glycerol were incorporated into the system, achieving a conductivity of up to 2.20 S m −1 , a tensile strength of 2.06 MPa, and a tensile strain of 13.6%. This wood‐based conductive hydrogel is employed as an electrolyte in supercapacitors. The specific capacitance values of the supercapacitor at different scan rates. Furthermore, this hydrogel can be used to fabricate flexible sensors. Such sensors exhibit stable periodic signals under different bending angles, and are particularly stable and sensitive at a 60° bend, making them suitable for simulating dynamic movements. This study leverages the hierarchical porosity of wood and a dual‐network design to develop a mechanically robust and conductive hydrogel. The material holds great potential for applications in energy storage and flexible electronic devices, offering a promising strategy for the development of high‐performance systems.
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