PET/Graphene Nanocomposite Fibers Obtained by Dry-Jet Wet-Spinning for Conductive Textiles

被引:6
|
作者
Leon-Boigues, Laia [1 ]
Flores, Araceli [1 ]
Gomez-Fatou, Marian A. [1 ]
Vega, Juan F. [2 ]
Ellis, Gary J. [1 ]
Salavagione, Horacio J. [1 ]
机构
[1] CSIC, Inst Ciencia & Tecnol Polimeros ICTP, Dept Fis Polimeros Elastomeros & Aplicac Energet, Juan Cierva 3, Madrid 28006, Spain
[2] CSIC, Inst Estruct Mat IEM, Dept Fis Macromol, BIOPHYM, Serrano 113bis, Madrid 28006, Spain
关键词
smart textiles; mechanical stability; electrical conductivity; deformation cycles; TEREPHTHALATE) NANOCOMPOSITES; GRAPHENE; POLY(ETHYLENE-TEREPHTHALATE); POLYANILINE; TEMPERATURE; MORPHOLOGY; POLYMERS; SMART; MODEL;
D O I
10.3390/polym15051245
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
The combination of polyethylene terephthalate (PET), one of the most used polymers in the textile industry, with graphene, one of the most outstanding conductive materials in recent years, represents a promising strategy for the preparation of conductive textiles. This study focuses on the preparation of mechanically stable and conductive polymer textiles and describes the preparation of PET/graphene fibers by the dry-jet wet-spinning method from nanocomposite solutions in trifluoroacetic acid. Nanoindentation results show that the addition of a small amount of graphene (2 wt.%) to the glassy PET fibers produces a significant modulus and hardness enhancement (approximate to 10%) that can be partly attributed to the intrinsic mechanical properties of graphene but also to the promotion of crystallinity. Higher graphene loadings up to 5 wt.% are found to produce additional mechanical improvements up to approximate to 20% that can be merely attributed to the superior properties of the filler. Moreover, the nanocomposite fibers display an electrical conductivity percolation threshold over 2 wt.% approaching approximate to 0.2 S/cm for the largest graphene loading. Finally, bending tests on the nanocomposite fibers show that the good electrical conductivity can be preserved under cyclic mechanical loading.
引用
收藏
页数:18
相关论文
共 50 条
  • [1] Dry-jet wet spinning of polyhydroxyamide fibers
    Park S.K.
    Cho S.H.
    Farris R.J.
    [J]. Fibers and Polymers, 2000, 1 (2) : 92 - 96
  • [2] Microstructure Evolution of Dry-jet Wet-spinning Polyacrylonitrile Fibers during Oxidative Stabilization
    Hu, Xiuying
    Tang, Xinde
    Han, Nianfeng
    Xu, Jing
    [J]. 2019 INTERNATIONAL CONFERENCE ON ADVANCED ELECTRONIC MATERIALS, COMPUTERS AND MATERIALS ENGINEERING (AEMCME 2019), 2019, 563
  • [3] THE DRY-JET WET-SPINNING OF AN ACRYLIC-FIBRE YARN
    EAST, GC
    MCINTYRE, JE
    PATEL, GC
    [J]. JOURNAL OF THE TEXTILE INSTITUTE, 1984, 75 (03) : 196 - 200
  • [4] The index of dry-jet wet spinning for polyacrylonitrile precursor fibers
    [J]. Chiu, Yu-Tsung, 1600, John Wiley and Sons Inc (132):
  • [5] The Index of Dry-Jet Wet Spinning for Polyacrylonitrile Precursor Fibers
    Wang, Tai-Yuan
    Chang, Hsiao-Chuan
    Chiu, Yu-Tsung
    Tsai, Jia-Lin
    [J]. JOURNAL OF APPLIED POLYMER SCIENCE, 2015, 132 (02)
  • [6] 干湿纺(Dry-Jet Wet-spinning)丝技术的发展
    金离尘
    [J]. 纺织导报, 1987, (08) : 10 - 11
  • [7] Highly Conductive Double-Wall Carbon Nanotube Fibers Produced by Dry-Jet Wet Spinning
    Wang, Hao-Zike
    Jiao, Xin-Yu
    Gao, Zhao-Qing
    Hou, Peng-Xiang
    Xu, Le-Le
    Shi, Chao
    Liang, Yan
    Wang, Yun-Peng
    Liu, Chang
    [J]. ADVANCED FUNCTIONAL MATERIALS, 2024,
  • [8] ANALYTICAL MODELLING OF DRY-JET WET SPINNING
    Liu, Hong-Yan
    Li, Zhi-Min
    Yao, Yan-Ju
    Ko, Frank K.
    [J]. THERMAL SCIENCE, 2017, 21 (04): : 1807 - 1812
  • [9] Mesopores variation in polyacrylonitrile fibers during dry-jet wet spinning process
    Gao, Quan
    Jing, Min
    Wang, Chengguo
    Chen, Meiling
    Zhao, Shengyao
    Wang, Wenli
    Qin, Jianjie
    [J]. IRANIAN POLYMER JOURNAL, 2019, 28 (03) : 259 - 269
  • [10] Preparation of High-Performance Polyethersulfone/Cellulose Nanocrystal Nanocomposite Fibers via Dry-Jet Wet Spinning
    Son, Sung Min
    Lee, Jung-Eun
    Jeon, Joonho
    Lim, Sung In
    Kwon, Hyuk Taek
    Eom, Youngho
    Chae, Han Gi
    [J]. MACROMOLECULAR RESEARCH, 2021, 29 (01) : 33 - 39