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用于应变和温度传感应用的柔性导电银纳米线/纤维素纳米原纤混合纳米纸。

Flexible conductive Ag nanowire/cellulose nanofibril hybrid nanopaper for strain and temperature sensing applications.

作者信息

Yin Rui, Yang Shuaiyuan, Li Qianming, Zhang Shuaidi, Liu Hu, Han Jian, Liu Chuntai, Shen Changyu

机构信息

Key Laboratory of Materials Processing and Mold (Zhengzhou University), Ministry of Education, National Engineering Research Center for Advanced Polymer Processing Technology, Zhengzhou University, Zhengzhou 450002, China; China Astronaut Research and Training Center, Beijing 100094, China.

Key Laboratory of Materials Processing and Mold (Zhengzhou University), Ministry of Education, National Engineering Research Center for Advanced Polymer Processing Technology, Zhengzhou University, Zhengzhou 450002, China.

出版信息

Sci Bull (Beijing). 2020 Jun 15;65(11):899-908. doi: 10.1016/j.scib.2020.02.020. Epub 2020 Feb 24.

Abstract

With the rapid development of smart wearable devices, flexible and biodegradable sensors are in urgent needs. In this study, "green" electrically conductive Ag nanowire (AgNW)/cellulose nanofiber (CNF) hybrid nanopaper was fabricated to prepare flexible sensors using the facial solution blending and vacuum filtration technique. The amphiphilic property of cellulose is beneficial for the homogeneous dispersion of AgNW to construct effective electrically conductive networks. Two different types of strain sensors were designed to study their applications in strain sensing. One was the tensile strain sensor where the hybrid nanopaper was sandwiched between two thermoplastic polyurethane (TPU) films through hot compression, and special micro-crack structure was constructed through the pre-strain process to enhance the sensitivity. Interestingly, typical pre-strain dependent strain sensing behavior was observed due to different crack densities constructed under different pre-strains. As a result, it exhibited an ultralow detection limit as low as 0.2%, good reproducibility under different strains and excellent stability and durability during 500 cycles (1% strain, 0.5 mm/min). The other was the bending strain sensor where the hybrid nanopaper was adhered onto TPU film, showing stable and recoverable linearly sensing behavior towards two different bending modes (tension and compression). Importantly, the bending sensor displayed great potential for human motion and physiological signal detection. Furthermore, the hybrid nanopaper also exhibited stable and reproducible negative temperature sensing behavior when it was served as a temperature sensor. This study provides a guideline for fabricating flexible and biodegradable sensors.

摘要

随着智能可穿戴设备的快速发展,柔性及可生物降解传感器的需求迫切。在本研究中,采用简易的溶液共混和真空过滤技术制备了“绿色”导电银纳米线(AgNW)/纤维素纳米纤维(CNF)复合纳米纸,用于制备柔性传感器。纤维素的两亲性有利于AgNW的均匀分散,从而构建有效的导电网络。设计了两种不同类型的应变传感器来研究其在应变传感中的应用。一种是拉伸应变传感器,通过热压将复合纳米纸夹在两层热塑性聚氨酯(TPU)薄膜之间,并通过预应变过程构建特殊的微裂纹结构以提高灵敏度。有趣的是,由于在不同预应变下构建的裂纹密度不同,观察到了典型的依赖于预应变的应变传感行为。结果,它表现出低至0.2%的超低检测限,在不同应变下具有良好的重现性,并且在500次循环(1%应变,0.5 mm/min)过程中具有出色的稳定性和耐久性。另一种是弯曲应变传感器,复合纳米纸粘贴在TPU薄膜上,对两种不同的弯曲模式(拉伸和压缩)表现出稳定且可恢复的线性传感行为。重要的是,弯曲传感器在人体运动和生理信号检测方面显示出巨大潜力。此外,当复合纳米纸用作温度传感器时,还表现出稳定且可重现的负温度传感行为。本研究为制备柔性及可生物降解传感器提供了指导。

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