材料科学
电导率
拉伤
导电体
呼吸监测
光电子学
可穿戴计算机
湿度
持续监测
生物医学工程
结构健康监测
灵敏度(控制系统)
纳米技术
复合材料
小型化
可扩展性
计算机科学
硅橡胶
制作
离子电导率
电子工程
作者
Yueyang Xu,Yongjie Yu,Nan Lin,Lihui Huang,Xinna Zhang,esmaeil heydari,Gongxun Bai
标识
DOI:10.1021/acsaelm.5c02209
摘要
Reliance on external power sources remains a significant constraint for the practical deployment of flexible sensors. Herein, we develop a multifunctional hydrogel-based sensor that operates in two distinct modes: a self-powered mode for humidity sensing and a resistance mode for strain detection. The sensor is built around a conductive poly(vinyl alcohol)-graphene oxide/lithium bromide (PVA-GO/LiBr) hydrogel, fabricated via a straightforward one-step process. This core material exhibits a high ionic conductivity of 0.33 S·cm–1. In its self-powered humidity-sensing mode, the device leverages a metal–air redox reaction, where moisture-triggered ion mobility generates a current output with a sensitivity of 0.299 nA/s per % RH in the 70% to 90% RH range. Simultaneously, the intrinsic resistance of the very same hydrogel structure serves as a highly responsive strain gauge, capable of achieving a 6-fold increase in resistance at 400% tensile strain. Demonstrating robust performance even at −15 °C, the sensor is integrated into a respiratory monitoring platform. It successfully enables the real-time detection of abnormal breathing patterns, such as sleep apnea hypopnea syndrome (SAHS), showcasing its potential as a scalable and power-efficient solution for advanced wearable health diagnostics and telemedicine.
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