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Transparent and stretchable strain sensors based on metal nanowire microgrids for human motion monitoring

机译:基于金属纳米线微电网进行人体运动监测的透明和拉伸应变传感器

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摘要

Optical transparency is increasingly considered as one of the most important characteristics required in advanced stretchable strain sensors for application in body-attachable systems. In this paper, we present an entirely solution-processed fabrication route to highly transparent and stretchable resistive strain sensors based on silver nanowire microgrids (AgNW-MGs). The AgNW-MG strain sensors are readily prepared by patterning the AgNWs on a stretchable substrate into a MG geometry via a mesh-template-assisted contact-transfer printing. The MG has a unique architecture comprising the AgNWs and can be stretched to epsilon = 35%, with high gauge factors of similar to 6.9 for epsilon = 0%-30% and similar to 41.1 for epsilon = 30%-35%. The sensor also shows a high optical transmittance of 77.1% +/- 1.5% (at 550 nm) and stably maintains the remarkable optical performance even at high strains. In addition, the sensor responses are found to be highly reversible with negligible hysteresis and are reliable even under repetitive stretching-releasing cycles (1000 cycles at epsilon = 10%). The practicality of the AgNW-MG strain sensor is confirmed by successfully monitoring a wide range of human motions in real time after firmly laminating the device onto various body parts.
机译:光学透明度越来越多地被认为是在适用于身体可连接系统中的先进拉伸应变传感器中最重要的特性之一。在本文中,我们在基于银纳米线微电网(AgNW-Mgs)的高度透明和可拉伸的电阻应变传感器的完全解决的制造途径。通过网状模板辅助接触转移印刷将可拉伸基板上的AgNW图案化成Mg几何形状,容易地制备AgNW-Mg菌株传感器。 Mg具有独特的结构,包括AgNW,并且可以拉伸到epsilon = 35%,具有与Epsilon的6.9相似的高规计因子= 0%-30%,类似于41.1的Epsilon = 30%-35%。传感器还显示出77.1%+/- 1.5%(550nm)的高光学透射率,即使在高菌株中也能稳定地保持显着的光学性能。另外,发现传感器响应具有高度可逆的滞后,即使在重复的拉伸释放循环(εePsilon = 10%的1000次循环下也可靠)。 AgNW-Mg应变传感器的实用性通过在牢固地将设备牢固地层压到各种身体部位之后成功监测各种人类运动来确认。

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