Preparation and properties of cotton fabric modified by silver nanowires

被引:0
|
作者
Zhao Y. [1 ]
Qian J. [1 ]
Sun L. [1 ]
Peng H. [1 ]
Mei M. [1 ]
机构
[1] College of Textile Science and Engineering, International Institute of Silk, Zhejiang Sci-Tech University, Hangzhou
来源
关键词
Conductivity; Cotton fabric; Flexible conductive fabric; Oxidation treatment; Silver nanowire; UV resistance;
D O I
10.13475/j.fzxb.20200505207
中图分类号
学科分类号
摘要
In order to increase the added value of cotton fabrics and improve its adsorption to modifying components, sodium periodate was used for oxidation treatment to increase the adhesion of cotton fiber. Silver nanowires (AgNWs) were then prepared by one-step polyol reduction method at 160℃ and dispersed in anhydrous ethanol. With a cotton fabric as the substrate, AgNWs was finished on the surface of the fabric by the impregnation drying method. The finished cotton fabric was characterized, and its UV resistance, conductivity and washing resistance were tested. The results show that with the increase of AgNWs concentration, the electrical conductivity of the fabric increases by more than 80%. When the AgNWs concentration is 10 g/L, the UV protection factor (UPF) value reaches 55, and the UV transmittance is reduced to less than 2.5%. The washing resistance of the modified cotton fabric is improved by 20% after the oxidation treatment, and the UPF value of the modified fabric after three times of washing reaches 46.51. The flexible conductive cotton fabric can be applied to flexible electronic textiles and anti ultraviolet products. © 2021, Periodical Agency of Journal of Textile Research. All right reserved.
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页码:115 / 121
页数:6
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  • [1] NOUREDDINE A, LUIS C, ERIC H., Functionalization of a cotton fabric surface with titania nanosols: applications for self-cleaning and UV-protection properties, ACS Applied Materials & Interfaces, 1, 10, pp. 2141-2146, (2009)
  • [2] ZHOU Yangzhou, QIAN Lei, ZHANG Ting, Researchprogress of silver nanowires and transparent conductive films, Materials Reports, 34, 21, pp. 21081-21092, (2020)
  • [3] FERRARO G, FRATINI E., A simple synthetic approach to prepare silver elongated nanostructures: from nanorods tonanowires, Journal of Chemical Education, 96, 3, pp. 553-557, (2019)
  • [4] JIA L C, ZHANG G, XU L, Et al., Robustly superhydrophobic conductive textile for efficient electromagnetic interference shielding, ACS Applied Materials and Interfaces, 11, 1, pp. 1680-1688, (2019)
  • [5] WU Ronghui, MA Liyun, ZHANG Yifan, Et al., Yarn tensile strain sensor with silver nanowire coating, Journal of Textile Research, 40, 12, pp. 45-49, (2019)
  • [6] XU Hongmei, YU Xiao, High yield synthesis of silver nanowires and improvement of silver paste performance of solar cells, Journal of Sun Yat-Sen Universi-ty (Natural Science Edition), 57, 4, pp. 115-120, (2018)
  • [7] LU Jian, WEI Wei, YANG Guang, Et al., Preparation and electromagnetic shielding properties of silver nanowire films, New Chemical Materials, 47, 9, pp. 104-108, (2019)
  • [8] WANG Bo, FAN Lihua, YUAN Yun, Et al., Preparation and electrical storage properties of stretchable polypyrrole/cotton knitted fabric, Journal of Textile Research, 41, 10, pp. 101-106, (2020)
  • [9] LI Ting, JIAO Chenlu, ZHANG Weiwei, Et al., UV resistance and self-cleaning finishing of cotton fabric with modified TiO<sub>2</sub> nanowires, China Textile Leader, 3, pp. 51-54, (2016)
  • [10] LU Y, JIANG J, PARK S, Et al., Wet-spinning fabrication of flexible conductive composite fibers from silver nanowires and fibroin, Bulletin of the Korean Chemical Society, 41, 2, pp. 162-169, (2020)