微尺度化学
材料科学
流体学
导电体
纳米技术
润湿
电极
微流控
流变学
导电的
软质材料
电阻抗
胶粘剂
生物界面
铸造
电容感应
自愈水凝胶
导电聚合物
纳米结构
生物医学工程
机械阻抗
电子皮肤
纳米尺度
生物加工
聚(N-异丙基丙烯酰胺)
分层(地质)
弹性体
复合材料
微加工
作者
Salahuddin Ahmed,Marzia Momin,Jiashu Ren,Xinyi Wang,Jirong Lin,Jia Sun,Yueqi Deng,Hyunjin Lee,Xiaojun Lian,Tao Zhou
出处
期刊:Small
[Wiley]
日期:2026-08-26
卷期号:: e75442-e75442
摘要
Owing to the inherent trade-off between conformal wetting and mechanical stability at the electrode-skin interface, achieving both microscale conformality and mechanical stability for epidermal electrophysiology remains challenging. Ionically conductive gels provide low interfacial impedance through fluidic wetting but suffer from dehydration and instability, whereas dry soft electrodes offer mechanical stability but lack the rheological adaptability needed for intimate skin contact. Here, we report a state-programmable graft interpenetrating network (g-IPN) that enables a printable and reactivatable conductive adhesive (RCA). The RCA simultaneously achieves high electrical conductivity, state-dependent adhesion, and reversible viscoelasticity. By transitioning from a mechanically robust solid film to a fluidic state via solvent activation, the RCA infiltrates complex skin surfaces and hair-occluded regions, delivering lower interfacial impedance than traditional gels. These properties enable stable electroencephalogram (EEG) and pulse recordings across both rigid and soft electrode platforms, establishing a scalable strategy for high-fidelity epidermal bioelectronic interfaces.
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