材料科学
共形矩阵
弹性体
介观物理学
数码产品
复合材料
消散
极限抗拉强度
工作(物理)
纳米技术
可伸缩电子设备
天然橡胶
可穿戴技术
软机器人
接头(建筑物)
聚合物
柔性电子器件
氯丁橡胶
机械能
电容感应
可穿戴计算机
压力(语言学)
机械工程
微电子
执行机构
共晶体系
作者
Qian Zhang,Xiaotao Wang,Zhijie Zhang,Cunming Yu,Yuzhen Ning,Zhihong Zhao,Qiang Li,Kesong Liu,Lei Jiang
标识
DOI:10.1021/acsami.6c10779
摘要
Elastomer-based flexible and stretchable sensors have attracted considerable research interest for promising applications in areas, such as human-machine interfaces, physiological monitoring, and soft robotics. Despite the typical trade-off between transparency, mechanical strength, and self-healing in elastomers, which is rooted in conflicting requirements for molecular chain mobility, impeding this broad application prospects in wearable devices and the conformable electronics field. This work demonstrates a polyborosiloxane/polydimethylsiloxane interpenetrating network (PBS/PDMS IPN) that successfully reconciles these properties. The resulting multifunctional elastomer exhibits both effective self-healing (97.8% recovery of tensile strength in 15 min under 1 psi) and a transmittance up to 93%. The energy dissipation imparted by high-molecular-weight hydroxy-terminated PDMS (PDMS-OH) further enhances adhesion, granting the multifunctional elastomer superior bonding performance. The multifunctional elastomer is integrated with eutectic gallium-indium (EGaIn) to form a stress sensor, which enables high-accuracy human motion monitoring, showcasing its potential for advanced wearable medical sensors.
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