Intelligent and highly sensitive strain sensor based on indium tin oxide micromesh with a high crack density

材料科学 电容感应 氧化铟锡 复合材料 应变计 线性 光电子学 声学 结构工程 计算机科学 电子工程 图层(电子) 工程类 操作系统 物理
作者
Yancong Qiao,Hao Tang,Haidong Liu,Jinming Jian,Shourui Ji,Fei Han,Zhiyuan Liu,Ying Liu,Yuanfang Li,Tianrui Cui,Jingxuan Cai,Guangyang Gou,Bingpu Zhou,Yi Yang,Tian‐Ling Ren,Jianhua Zhou
出处
期刊:Nanoscale [Royal Society of Chemistry]
卷期号:14 (11): 4234-4243 被引量:14
标识
DOI:10.1039/d1nr08005a
摘要

Cracks play an important role in strain sensors. However, a systematic analysis of how cracks influence the strain sensors has not been proposed. In this work, an intelligent and highly sensitive strain sensor based on indium tin oxide (ITO)/polyurethane (PU) micromesh is realized. The micromesh has good skin compatibility, water vapor permeability, and stability. Due to the color of the ITO/PU micromesh, it can be invisible on the skin. Based on the fragility of ITO, the density and resistance of cracks in the micromesh are greatly improved. Therefore, the ITO/PU micromesh strain sensor (IMSS) has an ultrahigh gauge factor (744.3). In addition, a finite element model based on four resistance layers is proposed to explain the performance of the IMSS and show the importance of high-density cracks. Compared with other strain sensors based on low-density cracks, the IMSS based on high-density cracks has larger sensitivity and better linearity. Physiological signals, such as respiration, pulse, and joint motion, can be monitored using the IMSS self-fixed on the skin. Finally, an invisible and artificial throat has been realized by combining the IMSS with a convolutional neural network algorithm. The artificial throat can translate the throat vibrations of the tester automatically with an accuracy of 86.5%. This work has great potential in health care and language function reconstruction.
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