纺织学报 ›› 2025, Vol. 46 ›› Issue (12): 181-187.doi: 10.13475/j.fzxb.20250205101

• 染整工程 • 上一篇    下一篇

还原氧化石墨烯/铜纳米颗粒导电棉织物的制备及其传感性能

王梁宇, 高晓红(), 于彩娇, 张雪婷, 杨旭礼   

  1. 南通大学 纺织服装学院, 江苏 南通 226019
  • 收稿日期:2025-02-24 修回日期:2025-08-30 出版日期:2025-12-15 发布日期:2026-02-06
  • 通讯作者: 高晓红(1968—),女,教授,硕士。主要研究方向为功能性纳米材料的制备、功能性纺织品开发、空气净化和印染废水治理等。E-mail:gao.xh@ntu.edu.cn
  • 作者简介:王梁宇(2001—),女,硕士生。主要研究方向为功能性纺织品的制备及应用。
  • 基金资助:
    国家自然科学基金项目(22408181);江苏省研究生科研与实践创新计划项目(KYCX25_3766)

Preparation and sensing performance of reduced graphene oxide/copper nanoparticles conductive cotton fabrics

WANG Liangyu, GAO Xiaohong(), YU Caijiao, ZHANG Xueting, YANG Xuli   

  1. College of Textile and Clothing, Nantong University, Nantong, Jiangsu 226019, China
  • Received:2025-02-24 Revised:2025-08-30 Published:2025-12-15 Online:2026-02-06

摘要: 以织物为基底的柔性传感器因其穿戴舒适性好和场景适配性强而备受关注,但存在响应迟滞、稳定性差的问题。为制备高性能柔性传感器,以棉织物为基底,使用硅烷偶联剂KH-560对其改性,以还原氧化石墨烯(rGO)和铜纳米颗粒(CuNPs)作为导电材料,采用浸渍法和原位还原法制备了rGO/CuNPs导电棉织物。通过扫描电子显微镜、X射线能谱仪、透射电子显微镜、X射线光电子能谱仪、傅里叶红外光谱仪和拉曼光谱仪等对导电织物进行表征,分析了不同速率下拉伸不同应变时织物的电阻变化,并将织物固定在关节处,监测运动过程中织物电阻的变化,探究织物传感性能和运动监测性能。结果表明:rGO/CuNPs导电棉织物具有拉伸传感性能,对5%~15%拉伸应变、10~50 mm/min拉伸速度及100次循环应变表现出较好的响应性、稳定性和可重复性。该传感器能够实现对人体关节运动的监测。

关键词: 棉织物, 还原氧化石墨烯, 铜纳米颗粒, 传感器, 导电织物, 智能纺织品, 柔性应变传感器, 传感性能

Abstract:

Objective Most of the smart wearable products are used as accessories, which limits their application and popularity. In this study, cotton fabrics were used as the substrate, modified by silane coupling agent KH-560, and reduced graphene oxide (rGO) and copper nanoparticles (CuNPs) were used as conductive materials to engineer rGO/CuNPs/cotton fabric(CF) flexible sensors with both conductivity and wearing comfort by impregnation method and in-situ reduction method.

Method The microscopic morphology and elemental distribution of the sample were observed using scanning electron micro-scope (SEM), X-ray energy dispersive spectroscopy (EDS), and transmission electron microscope (TEM). The surface elements and compounds of the samples were analyzed by X-ray photoelectron spectro-scopy(XPS). The surface functional groups of the sample were tested by Fourier transform infrared spectro-scopy(FT-IR). Raman spectroscopy was used to analyze the degree of defects and carbonization of conductive materials. The modified fabric was evaluated using an electronic testing equipment for the resistance changes of the fabric when stretched at different rates and different strains. Cyclic stability and maximum tensile sensing range of the fabric sensor were analyzed. The fabric sensors were fixed at joints, the resistance changes were recorded during motion to explore the sensing and motion-monitoring capabilities.

Results The XPS spectrum of rGO/CuNPs/CF and the XPS spectra of C1s, Cu2p and O1s were analyzed, and the results showed that the GO nanosheets coated on the surface of cotton fabrics were converted into rGO during the reduction process, and the surface defects were reduced, turning Cu2+ to Cu+. The FT-IR of CF and rGO/CuNPs/CF results showed that the oxygen-containing groups of the fabric decreased or even disappeared after the reduction, further indicating the reduction of GO. The Raman spectra of GO/CF, rGO/CF and rGO/CuNPs/CF results indicated that the supported CuNPs could have a synergistic effect with graphene, and the metal particles were dispersed between the graphene sheets, filling the structural defects on the surface of graphene, preventing graphene agglomeration, and helping to form a complete and continuous conductive network. The tensile resistance of the sensor was tested at strains of 5%, 10% and 15%, tensile rates of 10, 20, 30 and 50 mm/min, and with 6 cycles and 100 cycles. The test results showed that the range of fabric resistance increases with the increase of strain, and the response time becomes faster with the increase of tensile speed, and the resistance of the fabric does not change significantly after 100 stretching cycles. The results also showed that the resistance resumed to the vicinity of the initial resistance value after the external force was removed. The prepared rGO/CuNPs/CF flexible cotton fabric sensors were attached to human joints to test the resistance changes of the conductive fabrics during movement, and the results illustrated that the range of resistance change of the fabric sensors increased with the increase of action amplitude, suggesting that the rGO/CuNPs/CF flexible sensor can be used to perceive the movement behavior of the human body, and can intuitively distinguish the frequency and amplitude of human movement.

Conclusion rGO and CuNPs are loaded onto cotton fabric via the impregnation method and in-situ reduction method, and the rGO/CuNPs/CF conductive fabric with strain-sensing performance is successfully fabricated. The rGO/CuNPs/CF flexible sensor possesses good washing resistance, and exhibits excellent responsiveness as well as cyclic stability when subjected to external tensile force. It can perform the monitoring of human joint movements, and is expected to be applied in fields such as motion tracking, health monitoring, and smart clothing. This study provides a reference for the development of flexible sensors with simple and economical processes as well as excellent performance, and broadens the application scope of flexible conductive cotton fabrics.

Key words: cotton fabric, reduced graphene oxide, copper nanoparticle, sensor, conductive fabric, smart textiles, flexible strain sensor, sensing performance

中图分类号: 

  • TS111.8

图1

rGO/CuNPs/CF的微观形貌图"

图2

rGO/CuNPs/CF的XPS谱图"

图3

CF和rGO/CuNPs/CF的红外光谱图"

图4

GO/CF、rGO/CF和rGO/CuNPs/CF的拉曼光谱图"

图5

rGO/CuNPs/CF的拉伸电阻图"

图6

rGO/CuNPs/CF传感器水洗前后相对电阻变化曲线"

图7

应用于监测人体运动信号的传感器电阻变化图"

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