自愈水凝胶
可穿戴计算机
材料科学
灵敏度(控制系统)
压阻效应
纳米技术
生物相容性材料
纤维素
可穿戴技术
电极
计算机科学
光电子学
生物医学工程
电子工程
嵌入式系统
化学
化学工程
工程类
物理化学
高分子化学
作者
Giorgio Mogli,Annalisa Chiappone,Adriano Sacco,Candido Fabrizio Pirri,Stefano Stassi
标识
DOI:10.1021/acsaelm.2c01279
摘要
Tactile sensors, namely, flexible devices that sense physical stimuli, have received much attention in the last few decades due to their applicability in a wide range of fields like the world of wearables, soft robotics, prosthetics, and e-skin. Nevertheless, achieving a trade-off among stretchability, good sensitivity, easy manufacturability, and multisensing ability is still a challenge. Herein, an extremely flexible strain sensor composed of a cellulose-based hydrogel is presented. A natural biocompatible carboxymethylcellulose (CMC) hydrogel endowed with ionic conductivity by sodium chloride (NaCl) was used as the sensitive part. Both the sensible layer and electrodes were investigated with an innovative approach for wearable sensor applications based on electrochemical impedance spectroscopy to find the best device configuration. The sensor, exploitable both as a piezoresistor and as a piezocapacitor, presents high sensitivity to external stimuli, together with an extreme stretchability of up to 600%, showing the best strain and temperature sensitivity among the ionic conductive hydrogel-based devices presented in the literature. The very high strain sensitivity enables the hydrogel to be implemented in wearable strain sensors to monitor different human motions and physiological signals, representing a valid solution for the realization of transparent, easily manufacturable, and low-environmental-impact devices.
科研通智能强力驱动
Strongly Powered by AbleSci AI