电极
材料科学
信号(编程语言)
执行机构
计算机科学
数据采集
导电体
自愈水凝胶
人工肌肉
灵敏度(控制系统)
纳米技术
保险丝(电气)
机器人
肌电图
解码方法
机械手
丙烯酸
生物医学工程
传感器
电导率
单宁酸
工作(物理)
作者
Ziqing Yu,Yunqing Gu,Yun Ren,Hongxin Ding,Denghao Wu,Zhenxing Wu,Jiegang Mou
标识
DOI:10.1038/s41378-026-01219-y
摘要
Stable acquisition and accurate recognition of surface electromyography (sEMG) signals are key elements for building high-performance human-machine interaction (HMI) systems. Owing to their excellent flexibility, electrical conductivity, and biocompatibility, conductive hydrogels show great potential in physiological electrodes and flexible sensor applications. However, existing materials often struggle to simultaneously achieve high stretchability, good conductivity, self-healing capability, and strong interfacial adhesion. In this study, a hydrogel electrode with superior comprehensive performance was developed using acrylamide (AM) and acrylic acid (AA) as the matrix, incorporating chitosan (CS), tannic acid (TA), and glycerol (Gly) via a thermally initiated polymerization method. The resulting PCGK-CT hydrogel exhibited outstanding stretchability (elongation at break of 1250%), high conductivity (0.027 S/m), excellent sensitivity (gauge factor of 0.47 at 350% strain), high signal-to-noise ratio (SNR of 13.8 ± 0.3 dB), as well as desirable self-adhesive and self-healing properties. By integrating hydrogel electrodes with flexible electronic devices, high-fidelity sEMG signal acquisition and intelligent decoding were achieved. Combined with highly realistic motion control of a biomimetic robotic hand, this work establishes a feasible technical pathway for sEMG-based HMI systems and lays a foundation for further investigation in related extended applications.
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