材料科学
弹性体
硅酮
共晶体系
导电体
深共晶溶剂
电子皮肤
灵敏度(控制系统)
生物相容性材料
电容感应
纳米技术
可穿戴计算机
堆积
复合材料
佩多:嘘
钝化
触觉传感器
基质(化学分析)
丙烷
聚乙烯醇
可穿戴技术
作者
Sijia Zheng,Huige Ren,Yingying Zhou,Xing Yu,Wenrui Zheng,Jianfeng Zhang,Lingqi Huang,Zhihai Cao
摘要
ABSTRACT Pressure‐sensitive sensors that can respond to tiny signals are key to various medical and healthcare monitoring applications. Developing wearable sensors that combine high sensitivity in real time, flexibility, and biological and environmental safety is challenging. In this paper, a biomass‐based conductive silicone elastomer is designed via ultraviolet curing. The deep eutectic solvents are well dispersed within the silicone matrix via hydrogen bonding to ɑ‐lipoic acid moieties within the network. Along with the bottlebrush topology of the network, the engineered material exhibits ultra‐softness (Young's modulus 159 kPa), excellent rebound, and fatigue resistance under repeated high strains. Meanwhile, the engineered sensor shows outstanding electrical sensitivity to deformation in the range of 0–20 kPa. These features enable precise, real‐time monitoring of subtle signals, including respiration, abdominal and chest movements, wrist pulse, and facial expressions. The green conductive silicone elastomer shows great potential in the development of portable Polysomnography and other high‐end wearable devices in the future.
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