材料科学
标度系数
线性
应变计
脆性
导电体
拉伤
灵敏度(控制系统)
可穿戴计算机
可穿戴技术
复合材料
结构健康监测
复合数
降级(电信)
星团(航天器)
光电子学
工作(物理)
不稳定性
纳米技术
声学
航程(航空)
应变工程
制作
石墨烯
机械工程
作者
Wenteng Tang,Jiemeng Ding,Junlei Han,Ke Wang,Feng Li,Jikai Chen,Fanwei Meng,Zhaoyang Chu,昌述 梁,Jun Chen,Li Wang
标识
DOI:10.1021/acsami.6c06885
摘要
Crack-based strain sensors offer substantial potential for health monitoring, motion detection, and human-machine interaction. Yet their practical use is constrained by inherent performance trade-offs that make it difficult to combine high sensitivity, broad working range, and reliable linearity, as well as by the mechanical instability of brittle conductive layers. This work reports a crack sensor based on an adjustable micron-cluster structure. It is fabricated through screen printing, which enables the production of a structurally tunable carbon nanotube-polydimethylsiloxane (CNT-PDMS) composite film. By controlling the cluster density and size, we successfully guide the formation of high-density, alternating long–short channel-network crack morphology, thereby synergistically optimizing the sensor performance. A high gauge factor (GF) of 149.51 and excellent linearity ( R 2 = 0.979) over a strain range up to 80% were achieved by the fabricated sensor. After 100 cycles of 100% stretching and 360° twisting, the sensor exhibits less than 2% degradation in both sensitivity and linearity. Demonstrations in cardiomyocyte contractile force detection and wearable human-machine interaction confirm its strong potential for applications in biomedical monitoring and intelligent interactive systems.
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