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基于银纳米线/层状双氢氧化物杂化物的高稳定性和高灵敏度纸基弯曲传感器。

Highly Stable and Sensitive Paper-Based Bending Sensor Using Silver Nanowires/Layered Double Hydroxides Hybrids.

作者信息

Wei Yong, Chen Shilong, Li Fucheng, Lin Yong, Zhang Ying, Liu Lan

机构信息

College of Materials Science and Engineering, Key Lab of Guangdong Province for High Property and Functional Macromolecular Materials, South China University of Technology, Guangzhou 510641, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2015 Jul 8;7(26):14182-91. doi: 10.1021/acsami.5b03824. Epub 2015 Jun 26.

Abstract

Highly sensitive flexible piezoresistive materials using silver nanowires (AgNWs) composites have been widely researched due to their excellent electrical, optical, and mechanical properties. Intrinsically, AgNWs tend to aggregate in polymer matrix because of the intense depletion-induced interactions, which seriously influence the percolation threshold of the composites. In this study, we report a highly stable and sensitive paper-based bending sensor using the AgNWs and layered double hydroxides (LDHs) to construct a hybrid conductive network in waterborne polyurethane that is easy to destruct and reconstruct under bending deformation. The nonconductive 2D LDH nanosheets are embedded into AgNWs network and assist dispersion of AgNWs, which depends on the hydrogen bonding between the two nanostructures. The percolation threshold of the composites decreases from 10.8 vol % (55 wt %) to 3.1 vol % (23.8 wt %), and the composites reaches a very low resistivity (10(-4) Ω·cm) with a small amount of AgNWs (8.3 vol %) due to the dispersion improvement of AgNWs with the effect of LDH nanosheets. The as-prepared conductive composites with low percolation threshold can be manufactured on paper via various methods such as rollerball pen writing, inkjet printing, or screen printing. The bending sensor prepared by manufacturing the composites on paper shows low-cost, excellent conductivity, flexibility (>3000 bending cycles), sensitivity (0.16 rad(-1)), fast response (120 ms) and relaxation time (105 ms), and nontoxicity. Therefore, a simple but efficient wearable sensor is developed to monitor the human motions (such as fingers and elbow joints movements) and presents good repeatability, stability, and responsiveness, making the bending sensor possibly able to meet the needs in numerous applications for robotic systems.

摘要

由于具有优异的电学、光学和机械性能,使用银纳米线(AgNWs)复合材料的高灵敏度柔性压阻材料已得到广泛研究。本质上,由于强烈的耗尽诱导相互作用,AgNWs在聚合物基体中容易聚集,这严重影响了复合材料的渗流阈值。在本研究中,我们报道了一种高度稳定且灵敏的纸质弯曲传感器,该传感器使用AgNWs和层状双氢氧化物(LDHs)在水性聚氨酯中构建混合导电网络,该网络在弯曲变形下易于破坏和重构。非导电的二维LDH纳米片嵌入到AgNWs网络中,并辅助AgNWs的分散,这取决于两种纳米结构之间的氢键。复合材料的渗流阈值从10.8体积%(55重量%)降至3.1体积%(23.8重量%),并且由于LDH纳米片的作用使AgNWs的分散性得到改善,复合材料在少量AgNWs(8.3体积%)时就达到了非常低的电阻率(1×10⁻⁴Ω·cm)。所制备的具有低渗流阈值的导电复合材料可以通过诸如滚珠笔书写、喷墨打印或丝网印刷等各种方法在纸张上制造。通过在纸张上制造复合材料制备的弯曲传感器具有低成本、优异的导电性、柔韧性(>3000次弯曲循环)、灵敏度(0.16 rad⁻¹)、快速响应(120 ms)和弛豫时间(105 ms)以及无毒的特点。因此,开发了一种简单但高效的可穿戴传感器来监测人体运动(如手指和肘关节运动),并具有良好的重复性、稳定性和响应性,使得该弯曲传感器有可能满足机器人系统众多应用中的需求。

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