材料科学
自愈水凝胶
胶粘剂
纳米复合材料
生物电子学
复合材料
柔性电子器件
压力传感器
甲基丙烯酸酯
导电体
纳米纤维素
纳米技术
聚合物
纤维素
化学工程
共聚物
高分子化学
机械工程
工程类
生物传感器
图层(电子)
作者
Wenjing Ma,Wenxuan Cao,Tao Lu,Zhicheng Jiang,Ranhua Xiong,Sangram Keshari Samal,Chaobo Huang
标识
DOI:10.1021/acsami.1c20271
摘要
In recent years, conductive hydrogels have generated tremendous attention in biomedicals and bioelectronics fields due to their excellent physiochemical properties. In this study, a physically cross-linked conducting hydrogel has been designed in combination with cellulose nanocrystalline (CNC), polyacrylic acid (PAA) chains, laurel methacrylate, and sodium dodecyl sulfate. The obtained result shows that the hydrogel prepared is ultrastretchable, mechanically robust, transparent, biocompatible, conductive, and self-healing. The mechanical property of the prepared hydrogel is optimized through variation of the CNC content. The optimal hydrogel (CNC-1/PAA) exhibits an impressive mechanics, including high stretchability (∼1800%) and compressibility, good elasticity, and fatigue resistance. Furthermore, the conductivity of the hydrogel enables tensile strain- and pressure-sensing capabilities. The CNC/PAA-based flexible sensors are successfully designed, which shows high sensitivity, fast response (290 ms), and excellent cycle stability as well as the pressure sensing capability. As a result, the designed hydrogel has the ability to sense and detect diverse human motion, including elbow/finger/wrist bending and speaking, which demonstrates that the designed self-healing conductive hydrogels have significant potential for applications in flexible electronics.
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