Journal of Textile Research ›› 2025, Vol. 46 ›› Issue (02): 218-226.doi: 10.13475/j.fzxb.20240908001

• Dyeing and Finishing Engineering • Previous Articles     Next Articles

Self-assembly and sensing applications of patterned conductive fabric matrix

CHEN Qi1, WU Qi2, XU Jinlin1, JIA Hao1,3()   

  1. 1. College of Textile Science and Engineering, Jiangnan University, Wuxi, Jiangsu 214122, China
    2. Beijing Zhongshiguangjing Cultural Development Co., Ltd., Beijing 100025, China
    3. Zhejiang Key Laboratory of Clean Dyeing and Finishing Technology, Shaoxing, Zhejiang 312000, China
  • Received:2024-09-25 Revised:2024-11-06 Online:2025-02-15 Published:2025-02-15
  • Contact: JIA Hao E-mail:jiahao@jiangnan.edu.cn

Abstract:

Objective Flexible sensor devices based on fabrics have shown wide application prospects in fields such as healthcare and human-computer interaction in recent years due to their excellent bendability, good flexibility, and breathability. However, the roughness of the fabric surface makes it difficult to construct high-precision electrode patterns and structures on its surface. Therefore, using low-pressure ultraviolet light and chemical surface treatment methods, a high-precision and high-sensitivity patterned conductive matrix was constructed on the surface of the fabric.

Method By combining nano silver composite conductive dispersion with fabric substrate and using low-pressure ultraviolet light irradiation and chemical treatment methods, the surface energy differentiation of specific parts of the fabric surface is achieved, resulting in differences in hydrophilicity and hydrophobicity. This leads to the positioning, attachment, and spreading of the conductive dispersion on the fabric surface. The positioning, adhesion, and spreading of conductive dispersion on the substrate surface were regulated through microstructure morphology construction and surface chemical structure, thereby achieving specific conductive circuit patterns on non-planar substrates.

Results To improve the sensitivity and stability of conductive dispersion in sensing applications, silver nanowires were prepared using the polyol method, and carbon nanofibers were introduced to prepare a highly sensitive sensing nano silver composite conductive dispersion. Preparation of high aspect ratio silver nanowires by adjusting silver ion concentration and high-temperature reaction time. Through the synergistic effect between silver nanowires and carbon nanofibers, high aspect ratio silver nanowires were used as the conductive skeleton, and brittle carbon nanofibers are introduced as the "weak link". When the base fabric was stretched, the brittle carbon nanofibers would be shifted first, causing a change in resistance and improving the sensitivity of the conductive network. In order to obtain a sensing fabric substrate with higher fineness and adhesion, the mass ratio of long-chain silane to TiO2 was used to regulate the substrate roughness. It was found that when the mass ratio of long-chain silane to TiO2 was 1∶3, the surface roughness of the hydrophobic fabric became higher, which is conducive to the adhesion of the conductive dispersion and reduces the time cost. As the proportion of long-chain silane increases, the depth of the fabric surface increases, resulting in a higher surface roughness of hydrophobic fabrics. Due to the mechanical anchoring effect, increasing surface roughness can enhance the adhesion between the deposited metal pattern and the substrate. Finally, the UV illumination time was set to 30 minutes. UV irradiation was found to be able to break anaerobic bonds, induce substrate oxidation, cause changes in surface structure, and increase surface energy and adhesion. Using a nano silver composite conductive dispersion with a volume ratio of 20% ethylene glycol, it showed good stability and self-assembled circuits with a small fineness of up to 100 μm. After adjusting the solvent composition, the nano silver composite conductive dispersion quickly and accurately adhered to the hydrophilic region of the self-assembled patterned fabrics with good resolution. The conductive matrix prepared by this method achieved stable cyclic performance at strains of 1%, 5%, 10%, and 15%, and sensitively captured signals of small vibrations such as elastic ruler vibration, Adam's apple vibration, blinking, and finger bending. The resistance remained stable after 200 bending, twisting, and friction cycles.

Conclusion This strain sensor has high sensitivity in capturing signals of small vibrations and can monitor and record different degrees of limb movements. As the degree of limb bending increases, it displays varying degrees of changes in electrical resistivity. These results demonstrate the potential of the sensor in monitoring human motion. With the rapid development of artificial intelligence and IoT technology, smart wearable electronic products have attracted more attention. The method used in this research is simple to operate, cost-effective, and can be integrated into various complex patterned conductive lines. In addition to strain sensors, it can also be applied in fields such as fabric thermal management and health textiles, and its application can be expanded to achieve multifunctional development of products.

Key words: silver nanowire, surface energy difference, hydrophilicity/hydrophobicity, self-assembly, patterning, sensor

CLC Number: 

  • TS195.5

Fig.1

Fabrication process of patterned conductive matrix on fabric base"

Fig.2

SEM image of AgNWs conductive dispersion (a) and AgNWs/CNF composite conductive dispersion(b)"

Fig.3

Flow curve of nano-silver composite ink"

Fig.4

Surface tension of nano-silver composite ink"

Fig.5

Surface changes diagram of fabric substrate before and after ultraviolet illumination"

Fig.6

SEM image of hydrophobic fabric substrate"

Fig.7

FT-IR spectra of fabric substrate surface before and after ultraviolet illumination"

Fig.8

"Contact-moving-disengagement" process of droplets on fabric surface"

Fig.9

Wettability change of fabric surface under different time of ultraviolet illumination"

Fig.10

Contact angles of nano-silver composite ink on fabric surface before(a) and after(b) UV light"

Fig.11

Nano silver composite ink self-assembly patterned fabric optical diagram"

Fig.12

Cyclic stability of AgNWs/CNF composite conductive ink self-assembly wires under different strains"

Fig.13

Resistance changes of fabric based strain sensors without (a) and after(b) PDMS packaging under different conditions"

Fig.14

Display diagram of strain sensor packaged in PDMS"

Fig.15

Fabric based strain sensors for detecting signals of elastic ruler vibration(a), adam's apple vibration(b),blinking(c), fist making(d), finger bending(e) and elbow bending(f)"

[1] 张灏, 周晓帆. 智能可穿戴服饰设计新技术及其应用[J]. 针织工业, 2022(1): 57-60.
ZHANG Hao, ZHOU Xiaofan. New technologies and applications for intelligent wearable clothing design[J]. Knitting Industries, 2022(1): 57-60.
[2] WENG Wei, YANG Junjie, ZHANG Yang, et al. A route toward smart system integration: from fiber design to device construction[J]. Advanced Materials, 2020. DOI: 10.1002/adma.201902301.
[3] ZHANG Jiawen, ZHANG Yan, LI Yuanyuan, et al. Textile-based flexible pressure sensors: a review[J]. Polymer Reviews, 2022, 62(1): 65-94.
doi: 10.1080/15583724.2021.1901737
[4] 王瑾, 缪旭红. 基于织物的柔性电路制备方法及应用研究进展[J]. 丝绸, 2021, 58(3): 36-40.
WANG Jin, MIAO Xuhong. Research progress on preparation methods and applications of fabric based flexible circuits[J]. Journal of Silk, 2021, 58 (3): 36-40.
[5] 陈艳艳. RFID天线用多形貌PVP包覆纳米银UV导电油墨的制备及其性能研究[D]. 广州: 华南理工大学, 2017: 31-38.
CHEN Yanyan. Preparation and performance study of polymorphic PVP coated nano silver UV conductive ink for RFID antennas[D]. Guangzhou: South China University of Technology, 2017: 31-38.
[6] GUBBELS F, JEROME R, TEYSSIE P, et al. Selective localization of carbon black in immiscible polymer blend14s: a useful tool to design electrical conductive composites[J]. Macromolecules, 1994, 27(7): 1972-1974.
[7] LI Bo, ZHANG Shenghua, ZHANG Lei, et al. Strain sensing behavior of FDM 3D printed carbon black filled TPU with periodic configurations and flexible sub-strates[J]. Journal of Manufacturing Processes, 2022, 74: 283-295.
doi: 10.1016/j.jmapro.2021.12.020
[8] CIAN Cummins, ROSS Lundy. Enabling future nanomanufacturing through block copolymer self-assembly: a review[J]. Nano Today, 2020. DOI: 10.1016/j.nantod.2020.100936.
[9] LI Huizeng, FANG Wei, ZHAO Zhipeng, et al. Droplet precise self-splitting on patterned adhesive surfaces for simultaneous multidetection[J]. Angewandte Chemie International Edition, 2020, 59(26): 10535-10539.
[10] 张高晶, 王冰心, 刘迎春, 等. 三维织物基石墨烯柔性压力传感器设计及应用[J]. 针织工业, 2021(4): 49-54.
ZHANG Gaojing, WANG Bingxin, LIU Yingchun, et al. Design and application of a flexible pressure sensor for 3D fabric cornerstone graphene[J]. Knitting Industries, 2021(4): 49-54.
[11] LI Zhundong, HU Fengming, CHEN Zhiming, et al. Fiber-junction design for directional bending sen-sors[J]. Npj Flexible Electronics, 2021, 5(1): 4.
[12] MATHIEU Delmas, MARC Monthioux, THIERRY Ondarçuhu, et al. Contact angle hysteresis at the nanometer scale[J]. Physical Review Letters, 2011. DOI: 10.1103/physrevlett.106.136102.
[13] TOSHIKAZU Yamada, KATSUO Fukuhara, KEN Matsuoka, et al. Nanoparticle chemisorption printing technique for conductive silver patterning with submicron resolution[J]. Nature Communications, 2016. DOI: 10.1038/ncomms11402.
[14] 权颖楠. 电阻式编织绳柔性应变传感器的制备及性能评价[D]. 上海: 东华大学, 2020: 18-21.
QUAN Yingnan. Preparation and performance evaluation of resistance type woven rope flexible strain sen-sors[D]. Shanghai: Donghua University, 2020: 18-21.
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