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基于涂覆有裂纤维素纳米纤维/银纳米线层的聚氨酯海绵的超灵敏高压缩性压阻传感器。

Ultrasensitive and Highly Compressible Piezoresistive Sensor Based on Polyurethane Sponge Coated with a Cracked Cellulose Nanofibril/Silver Nanowire Layer.

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.

Integrated Composites Laboratory (ICL), Department of Chemical & Biomolecular Engineering , University of Tennessee , Knoxville , Tennessee 37996 , United States.

出版信息

ACS Appl Mater Interfaces. 2019 Mar 20;11(11):10922-10932. doi: 10.1021/acsami.9b00900. Epub 2019 Mar 6.

Abstract

With the rapid development of flexible wearable electronics, a piezoresistive sensor with low detection limit and wide strain sensing range turns out to be a great challenge for its application in this field. Here, a cracked cellulose nanofibril/silver nanowire (CA) layer-coated polyurethane (PU) sponge was acquired through a simple dip-coating process followed by precompression treatment. The electrical conductivity and mechanical property of the conductive CA@PU sponge could be effectively tuned through changing the dip-coating number. As a piezoresistive sensor, the sponge exhibited the capability of detecting both small and large motions over a wide compression strain range of 0-80%. Based on the "crack effect", the sensor possessed a detection limit as low as 0.2% and the gauge factor [GF, GF = (Δ R/ R)/ε, where Δ R, R, and ε represent the instantaneous resistance change, original resistance, and strain applied, respectively] was as high as 26.07 in the strain range of 0-0.6%. Moreover, the "contact effect" enabled the sensor to be applicable for larger strain, and the GF decreased first and then became stable with increasing compression strain. In addition, frequency- and strain-dependent sensing performances were observed, demonstrating that the sensor can respond reliably to different applied frequencies and strains. Furthermore, the sensor displayed exceptional stability, repeatability, and durability over 500 cycles. Finally, the sensor could be applicable for the detection of various human bodily motions, such as phonation, stamping, knee bending, and wrist bending. Most importantly, the sponge also exhibited great potential for the fabrication of artificial electronic skin. Herein, the conductive CA@PU sponge will undoubtedly promote the development of high-performance flexible wearable electronics.

摘要

随着柔性可穿戴电子产品的快速发展,对于在该领域的应用而言,具有低检测限和宽应变传感范围的压阻传感器仍然是一个巨大的挑战。在这里,通过简单的浸涂工艺和预压缩处理获得了具有裂纹纤维素纳米纤维/银纳米线 (CA) 层的聚氨酯 (PU) 海绵。通过改变浸涂次数,可以有效地调节导电 CA@PU 海绵的导电性和机械性能。作为压阻传感器,该海绵在 0-80%的宽压缩应变范围内表现出对小运动和大运动的检测能力。基于“裂纹效应”,传感器的检测限低至 0.2%,在 0-0.6%的应变范围内,其应变系数 [GF,GF = (Δ R/ R)/ε,其中 Δ R、R 和 ε 分别代表瞬时电阻变化、原始电阻和施加的应变] 高达 26.07。此外,“接触效应”使传感器能够适用于更大的应变,并且 GF 随着压缩应变的增加先减小然后变得稳定。此外,还观察到频率和应变相关的传感性能,表明传感器可以可靠地响应不同的施加频率和应变。此外,该传感器在 500 次循环以上表现出出色的稳定性、重复性和耐用性。最后,该传感器可用于检测各种人体运动,如发声、盖章、膝盖弯曲和手腕弯曲。最重要的是,该海绵在制造人造电子皮肤方面也具有巨大的潜力。在此,导电 CA@PU 海绵无疑将促进高性能柔性可穿戴电子产品的发展。

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