材料科学
导电体
自愈水凝胶
电导率
纳米技术
压阻效应
生物传感器
可穿戴计算机
微电子机械系统
稳健性(进化)
电阻率和电导率
光电子学
电子皮肤
标度系数
生物相容性材料
灵敏度(控制系统)
可穿戴技术
超分子化学
人体运动
信号(编程语言)
纳米光刻
人工肌肉
生物相容性
导电聚合物
生物电子学
拉伤
微流控
作者
Wenhui Wu,X William Yang,Meiran Xie,Hu He,Ruyi Sun
标识
DOI:10.1021/acsami.5c21550
摘要
Stretchable conductive hydrogels have emerged as ideal interfaces for seamless and biocompatible integration with human skin, showing significant potential in medical electronic applications. However, achieving a balance between high mechanical robustness and excellent electrical conductivity remains challenging, particularly for electromyography (EMG) and electrocardiography (ECG) sensing. Here, a high-performance conductive hydrogel sensor is fabricated by incorporating a mechanically interlocked polyrotaxane into a topological network. The resulting hydrogel exhibits a remarkable combination of properties: ultrahigh stretchability (2488%), high electrical conductivity (5.1 S/m), tissue-like strength (65 kPa), and suitable skin adhesion (38 kPa). Notably, high conductivity is achieved with only a trace amount of PEDOT:PSS (0.08 wt %). The hydrogel also demonstrates significant antibacterial activity, highlighting its potential for bioelectronic applications. Fabricated wearable sensors show high sensitivity (gauge factor of 5.7) and fast response (100 ms). They are successfully applied not only in monitoring vigorous human motions but also in real-time ECG and EMG signal acquisition, outperforming commercial sensing gels with superior signal-to-noise ratio.
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