Scalable Process to Develop Durable Conductive Cotton Fabric

被引:26
作者
Al Mamun, Md. Abdullah [1 ]
Islam, Md. Touhidul [1 ]
Islam, Md. Momtaz [1 ]
Sowrov, Kazi [2 ]
Hossain, Md. Afzal [1 ]
Ahmed, Dewan Murshed [1 ]
Shahariar, Hasan [3 ]
机构
[1] Bangladesh Univ Text, Dhaka 1208, Bangladesh
[2] Univ Manchester, Manchester, Lancs, England
[3] Funxion Wear Inc, Raleigh, NC 27606 USA
关键词
Conductive fabric; Scalable process; Layer by layer deposition; Durability; TEXTILES; NANOPARTICLES; ELECTRONICS; DESIGN; INK;
D O I
10.1007/s42765-020-00051-x
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Developing a scalable process is critical to manufacture conductive fabric for commercial applications. This paper describes a scalable coating process that is compatible with existing industrial finishing processes of fabrics. In this process, the fabric is continuously dipped in water-based metal salt and the reducing agent solution to impart conductive particles on the fiber surface. After 10 consecutive cycles of dip coating, the fabric shows 6 ohm /in. of resistance. The process is tuned to minimize process cost and material cost, and maximize the durability of the fabric. This paper also introduces an easy protective coating technique of the conductive fabric that improves the durability of the conductive fabric without sacrificing the comfort properties of textile fabrics such as breathability and flexibility. The encapsulated conductive fabric shows good air-permeability and it is 6.96 cm(3)/cm(2)/s. Moreover, the conductivity of the encapsulated fabric is quite stable after four accelerated washing cycles. Additionally, the fabric remains conductive on the surfaces and is suitable for using as a conductive track and connectors.
引用
收藏
页码:291 / 301
页数:11
相关论文
共 36 条
[1]   Highly Conductive, Scalable, and Machine Washable Graphene-Based E-Textiles for Multifunctional Wearable Electronic Applications [J].
Afroj, Shaila ;
Tan, Sirui ;
Abdelkader, Amr M. ;
Novoselov, Kostya S. ;
Karim, Nazmul .
ADVANCED FUNCTIONAL MATERIALS, 2020, 30 (23)
[2]   Fabrication of conductive and printable nano carbon ink for wearable electronic and heating fabrics [J].
Arbab, Alvira Ayoub ;
Memon, Anam Ali ;
Sun, Kyung Chul ;
Choi, Joo Young ;
Mengal, Naveed ;
Sahito, Iftikhar Ali ;
Jeong, Sung Hoon .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2019, 539 :95-106
[3]   Silver nanowire coated threads for electrically conductive textiles [J].
Atwa, Yahya ;
Maheshwari, Nupur ;
Goldthorpe, Irene A. .
JOURNAL OF MATERIALS CHEMISTRY C, 2015, 3 (16) :3908-3912
[4]  
Björninen T, 2015, PROCEEDINGS OF THE 2015 INTERNATIONAL CONFERENCE ON ELECTROMAGNETICS IN ADVANCED APPLICATIONS (ICEAA), P589, DOI 10.1109/ICEAA.2015.7297183
[5]   Novel solar cells in a wire format [J].
Chen, Tao ;
Qiu, Longbin ;
Yang, Zhibin ;
Peng, Huisheng .
CHEMICAL SOCIETY REVIEWS, 2013, 42 (12) :5031-5041
[6]   A flexible and highly sensitive capacitive pressure sensor based on conductive fibers with a microporous dielectric for wearable electronics [J].
Chhetry, Ashok ;
Yoon, Hyosang ;
Park, Jae Yeong .
JOURNAL OF MATERIALS CHEMISTRY C, 2017, 5 (38) :10068-10076
[7]  
Cho JY, 2007, LECT NOTES COMPUT SC, V4551, P1078
[8]   Polyol Synthesis of Silver Nanowires: An Extensive Parametric Study [J].
Coskun, Sahin ;
Aksoy, Burcu ;
Unalan, Husnu Emrah .
CRYSTAL GROWTH & DESIGN, 2011, 11 (11) :4963-4969
[9]   Electrical characterization of textile transmission lines [J].
Cottet, D ;
Grzyb, J ;
Kirstein, T ;
Tröster, G .
IEEE TRANSACTIONS ON ADVANCED PACKAGING, 2003, 26 (02) :182-190
[10]   Electromagnetic Interference Shielding Effectiveness of SS/PET Hybrid Yarn Incorporated Woven Fabrics [J].
Das, A. ;
Krishnasamy, J. ;
Alagirusamy, R. ;
Basu, A. .
FIBERS AND POLYMERS, 2014, 15 (01) :169-174