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采用导电纳米纤维组件制备的透气且大面积可感知柔性压阻传感器

Breathable and Large Curved Area Perceptible Flexible Piezoresistive Sensors Fabricated with Conductive Nanofiber Assemblies.

作者信息

Zhong Weibing, Jiang Haiqing, Jia Kangyu, Ding Xincheng, Yadav Ashish, Ke Yimin, Li Mufang, Chen Yuanli, Wang Dong

机构信息

Hubei Key Laboratory of Advanced Textile Materials & Application, Wuhan Textile University, Wuhan 430200, China.

出版信息

ACS Appl Mater Interfaces. 2020 Aug 19;12(33):37764-37773. doi: 10.1021/acsami.0c10516. Epub 2020 Aug 5.

Abstract

The rapid development of wearable electronics, humanoid robots, and artificial intelligence requires sensors to sensitively and stably detect external stress variations in large areas or on three-dimensional (3D) irregularly shaped surfaces while possessing the comfort. Most importantly, the flexibility and 3D compliance of sensors, and the fitting state of the interface between the sensor and the object are of great significance to the sensing accuracy and reliability. The ordered or random stacking and entangling of flexible and electrically conductive fiber materials can form a highly porous and mechanically stable fiber assembly. The changes in external stress can lead to the air trapped in the fiber assembly to flow in and out rapidly and repeatedly, as well as the reversible mechanical deformation of fiber materials. Correspondingly, the contact areas between electrically conductive fibers in the fiber assembly are reversibly changed, which makes the conductive and flexible fiber assembly be an ideal candidate for piezoresistive sensing material. It can be further expected that the statistical stability of contact points between conductive fibers under the stress may significantly increase with the decrease in fiber diameters. Herein, a new method to make a flexible piezoresistive sensor with conductive and porous fiber assembly was proposed. An ultrasensitive piezoresistive material was facilely prepared by fabricating conductive poly(vinyl alcohol--ethylene) (EVOH) nanofiber assemblies. The sensing performance of the piezoresistive sensor was optimized by regulating the nanofiber morphology, electrical conductivity, and mechanical properties. The flexible piezoresistive sensor exhibited a sensitivity of 2.79 kPa, a response time of 3 ms, and a recovery time of 10 ms. The sensing performance at different working frequencies was stable and durable within 4500 cycling tests. The flexible sensor showed good pressure-sensing accuracy and reliability when used on irregular surfaces and therefore was further applied in the static monitoring of large-area spatial pressure distribution and the wearable intelligent interactive device, demonstrating great application potential.

摘要

可穿戴电子设备、类人机器人和人工智能的快速发展,要求传感器能够在具备舒适性的同时,灵敏且稳定地检测大面积或三维(3D)不规则形状表面上的外部应力变化。最重要的是,传感器的柔韧性和3D顺应性,以及传感器与物体之间界面的贴合状态,对于传感精度和可靠性具有重要意义。柔性导电纤维材料的有序或随机堆叠与缠结可形成高度多孔且机械稳定的纤维组件。外部应力的变化会导致被困在纤维组件中的空气快速反复地流入和流出,以及纤维材料的可逆机械变形。相应地,纤维组件中导电纤维之间的接触面积会发生可逆变化,这使得导电柔性纤维组件成为压阻传感材料的理想候选者。可以进一步预期,随着纤维直径的减小,应力作用下导电纤维之间接触点的统计稳定性可能会显著增加。在此,提出了一种制备具有导电多孔纤维组件的柔性压阻传感器的新方法。通过制备导电聚乙烯醇 - 乙烯(EVOH)纳米纤维组件,轻松制备出了超灵敏压阻材料。通过调节纳米纤维的形态、电导率和机械性能,优化了压阻传感器的传感性能。该柔性压阻传感器的灵敏度为2.79 kPa,响应时间为3 ms,恢复时间为10 ms。在4500次循环测试中,不同工作频率下的传感性能稳定且持久。该柔性传感器在不规则表面上使用时表现出良好的压力传感精度和可靠性,因此进一步应用于大面积空间压力分布的静态监测和可穿戴智能交互设备,展现出巨大的应用潜力。

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