Preparation of rGO/Cu NPs Cotton Sensor with a Three-Dimensional Conductive Network Structure for Efficient Strain Sensing Performance via Co-impregnation One-Bath Reduction Method

IF 2.2 4区 工程技术 Q1 MATERIALS SCIENCE, TEXTILES
Xueting Zhang, Liangyu Wang, Xiaohong Gao, Caijiao Yu, Xuli Yang, Yuwen Bao, Qixia Liu
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Abstract

Flexible electronic devices such as wearable strain sensors have attracted great attention in health monitoring systems. However, there are numerous challenges associated with the practical application of flexible strain sensors, including insufficient sensitivity, poor durability and stability, high manufacturing costs, complex signal processing, and integration issues. This study employed a straightforward and cost-effective co-impregnation one-bath reduction process to prepare a flexible strain sensor with high sensitivity, good responsiveness, and stability. Silane coupling agent KH-560 was employed for the modification of cotton knitted fabric, thereby enhancing the bonding strength between the cotton and reduced graphene oxide (rGO)/copper nanoparticles (Cu NPs). The rGO and Cu NPs were composited and loaded onto the surface of the modified cotton, with Cu NPs serving as connection points that adhere between the rGO surface and sheets, thereby forming a unique three-dimensional conductive network structure on the cotton. The fabrication of the rGO/Cu NPs/cotton sensor was optimized through single-factor and orthogonal experiments, with the objective of improving its sensitivity and stability. The rGO/Cu NPs/cotton sensor shows effective strain sensing for tensile strains ranging from 0 to 15% in both the horizontal and vertical directions, exhibiting high responsiveness at stretching speeds of 10–50 mm/min and maintaining stability after 100 cycles. Moreover, the rGO/Cu NPs/cotton sensor is capable of accurately detecting the degree of curvature of different joints during human movement and also exhibits a robust response to facial muscle movements.

Abstract Image

采用共浸渍一浴还原法制备具有三维导电网络结构的rGO/Cu NPs棉花传感器
可穿戴应变传感器等柔性电子设备在健康监测系统中受到了广泛关注。然而,柔性应变传感器在实际应用中存在许多挑战,包括灵敏度不足、耐用性和稳定性差、制造成本高、信号处理复杂以及集成问题。本研究采用简单、经济的共浸渍一浴还原工艺制备了灵敏度高、响应性好、稳定性好的柔性应变传感器。采用硅烷偶联剂KH-560对棉织物进行改性,提高了棉织物与还原氧化石墨烯(rGO)/铜纳米粒子(Cu NPs)的结合强度。将还原氧化石墨烯和Cu NPs复合并加载到改性棉的表面,Cu NPs作为连接点粘附在还原氧化石墨烯表面和薄片之间,从而在棉花上形成独特的三维导电网络结构。通过单因素试验和正交试验,对rGO/Cu NPs/棉花传感器的制备工艺进行了优化,以提高传感器的灵敏度和稳定性。rGO/Cu NPs/棉花传感器在水平和垂直方向上对0 ~ 15%的拉伸应变均表现出有效的应变传感,在10 ~ 50 mm/min的拉伸速度下表现出高响应性,并且在100次循环后保持稳定。此外,rGO/Cu NPs/cotton传感器能够准确检测人体运动过程中不同关节的曲率程度,并且对面部肌肉运动也表现出强大的响应。
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来源期刊
Fibers and Polymers
Fibers and Polymers 工程技术-材料科学:纺织
CiteScore
3.90
自引率
8.00%
发文量
267
审稿时长
3.9 months
期刊介绍: -Chemistry of Fiber Materials, Polymer Reactions and Synthesis- Physical Properties of Fibers, Polymer Blends and Composites- Fiber Spinning and Textile Processing, Polymer Physics, Morphology- Colorants and Dyeing, Polymer Analysis and Characterization- Chemical Aftertreatment of Textiles, Polymer Processing and Rheology- Textile and Apparel Science, Functional Polymers
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