材料科学
解耦(概率)
拉伤
灵敏度(控制系统)
自愈水凝胶
温度测量
大气温度范围
温度控制
生物传感器
纳米技术
电导率
石墨烯
热导率
光电子学
复合材料
电子工程
机械工程
控制工程
物理化学
气象学
工程类
内科学
化学
高分子化学
物理
医学
量子力学
作者
Zemin Li,Jiaoya Huang,Runhui Zhou,Ziyu Chen,Wenchao Gao,Jiang He,Rongrong Bao,Caofeng Pan
标识
DOI:10.1002/admt.202300404
摘要
Abstract Hydrogels possess several interesting characteristics and have attracted increasing attention for flexible interactive strain‐sensing. However, hydrogel strain sensors are easily influenced by temperature because of the intrinsic characteristics of the materials, thus, their sensing accuracy is significantly affected. Herein, a strategy is proposed to eliminate the influence of temperature by building an in‐situ hydrogel temperature sensor next to the strain sensor to monitor ambient temperature changes and simultaneously correct the strain signal. By introducing silicon nanoparticles and modified graphene, the hydrogel exhibits a good balance between conductivity and stretchability. The hydrogel strain sensor exhibits a working range of up to 1000% and a sensitivity of 8.1. It can monitor human movement and shows good stability. Moreover, the hydrogel‐based sensor demonstrates an impressive thermal response sensitivity (−7.16% °C −1 ). This bimodal sensor not only realizes the decoupling of the strain sensor from the temperature but protects the temperature sensor from the influence of strain. More importantly, the device is also able to accurately control the manipulator under dynamic temperatures, proving the feasibility of the design. This strategy provides a new method to eliminate the influence of temperature on strain sensing and assists in the development of the interactive‐sensing field.
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