材料科学
耐久性
灵敏度(控制系统)
可穿戴计算机
导电体
可穿戴技术
透明度(行为)
纳米技术
热稳定性
工作(物理)
电子设备和系统的热管理
离子液体
热的
聚乙烯醇
工艺工程
理论(学习稳定性)
离子键合
计算机科学
机械工程
作者
Yimeng Ni,Shuhui Li,Shuai Yin,Min Li,Yue Yang,Jianying Huang,Yuekun Lai,Ivan P. Parkin,Claire J. Carmalt,Huaqiong Li
摘要
ABSTRACT Ionic conductive organohydrogels have attracted significant attention in wearable sensing due to their transparency, conductivity, and flexibility. However, simultaneously achieving mechanical softness, high transparency, environmental stability, and excellent sensing performance remains a significant challenge. Herein, a binary‐network ionic organohydrogel was fabricated using acrylamide and polyvinyl alcohol within a water/glycerol solvent system to impart anti‐freezing properties. The resulting organohydrogel exhibits high transparency (>95%) and remarkable stretchability (>1400%). Notably, the hydrogel‐based sensor demonstrates high strain sensitivity, a broad sensing range (2%–500%), and outstanding stability and durability over 1000 cycles. It can effectively monitor human motion across various joints, such as the wrist, elbow, and knee. Moreover, the sensor maintains reliable performance at both low (–20°C) and high (60°C) temperatures, showcasing excellent anti‐freezing and anti‐drying capabilities. It also possesses notable thermal sensitivity across a wide temperature range. Leveraging its dual sensitivity to strain and temperature, machine learning‐assisted technology was employed to recognize different breathing patterns, achieving an average prediction accuracy of 98.4%. This work lays a foundation for comprehensive respiratory health monitoring and holds promise for applications in daily health management and clinical practice.
科研通智能强力驱动
Strongly Powered by AbleSci AI