材料科学
弹性体
碳纳米管
复合数
变形(气象学)
耐久性
复合材料
软机器人
制作
纳米管
数字光处理
线性
纳米技术
光电子学
计算机科学
执行机构
电子工程
投影机
病理
替代医学
人工智能
工程类
医学
计算机视觉
作者
Ting Xiao,Qian Cheng,Ruixue Yin,Kemin Wang,Yang Gao,Fu‐Zhen Xuan
标识
DOI:10.1002/admt.202000745
摘要
Abstract Internet of things (IoT) is expected to significantly improve every aspect of society, especially in soft robotics, structural health monitoring, and human motion detection. Flexible strain sensors with high‐performance characteristics as well as highly efficient and cost‐effective maskless fabrication methods are the key components of IoT for these applications. Herein, a 3D printing technology using digital light processing is developed to fabricate high‐performance flexible strain sensors based on UV‐curable multiwalled carbon nanotubes/elastomer (MWCNT/EA) composite. The MWCNT/EA‐based device with 2 wt% MWCNTs delivers a sensitivity of 8.939 with a linearity up to 45% strain. Additionally, the sensor has a detectable strain range from 0.01% to 60%, a high mechanical durability (10 000 cycles), and linear responses to humidity and temperature. Numerical simulation and impedance study indicate that the sensor works on the deformation‐induced reduction of MWCNT conductive pathway. The developed device can be used to detect various external deformation, when combined with a near‐field communication circuit. Moreover, a 4 × 4 strain sensor array is developed for sensing external stimuli distribution, further demonstrating the high performance of the 3D printed device.
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