Zhenling ShangGuoqiang LiuYue SunChenghao LiNan ZhaoZhuo ChenRuisheng GuoZijian ZhengFeng ZhouWeimin Liu
As a flexible artificial material, the conductive hydrogel has broad application prospects in flexible wearable electronics, soft robotics, and biomedical monitoring. However, traditional hydrogels still face many challenges, such as long-term stability, availability in extreme environments, and long-lasting adhesion to the skin surface under sweaty or humid conditions. To circumvent the above issues, one kind of ionic conductive hydrogel was prepared by a simple one-pot method that dissolved chitosan (CS), 2-acrylamido-2-methyl-1-propanesulfonic acid (AMPS), tannic acid (TA), and 2-methoxy-ethyl acrylate (MEA) into dimethyl sulfoxide (DMSO)/H2O solvent. The resulting hydrogel showed excellent tensile properties (1440%), extreme environmental tolerance (-40-60 °C), adhesion (72 KPa at porcine skin), ionic conductivity (0.87 S m-1), and high-efficiency antibacterial property. Furthermore, the produced organohydrogel strain sensor exhibited high strain sensitivity (GF = 4.07), excellent signal sensing capabilities (human joint movement, microexpression, and sound signals), and long-term cyclic stability (400 cycles). Looking beyond, this work provides a simple and promising strategy for using hydrogel sensors in extreme environments for e-skin, health monitoring, and wearable electronic devices.
Zhenling Shang (16940303)Guoqiang Liu (444582)Yue Sun (197395)Chenghao Li (553600)Nan Zhao (351674)Zhuo Chen (135585)Ruisheng Guo (1480726)Zijian Zheng (784998)Feng Zhou (76988)Weimin Liu (50340)
Zuwu TangShuai BianJingjing WeiHe XiaoMin ZhangKai LiuLiulian HuangLihui ChenYonghao NiHui Wu
Qi ZhengWen‐Qiang CaoMao‐Sheng Cao
Lu ZhangYumin TianLei TianJunjiang SunHong J. Di
Rui LvZhongwu BeiYuan Ming HuangYangwei ChenZhiqiang ZhengQingliang YouChao ZhuYiping Cao