Flexible Electrothermal Laminate Films Based on Tannic Acid-Modified Carbon Nanotube/Thermoplastic Polyurethane Composite

被引:29
作者
Wang, Jing-Qi [1 ]
Lou, Tian-Jiao [1 ]
Wang, Tao [1 ]
Cao, Weiwei [1 ]
Zhao, Hui [2 ]
Qian, Peng-Fei [1 ]
Bao, Ze-Long [1 ]
Yuan, Xiao-Tong [1 ]
Geng, Hong-Zhang [1 ]
机构
[1] Tiangong Univ, Sch Mat Sci & Engn, Tianjin Key Lab Adv Fibers & Energy Storage, Tianjin 300387, Peoples R China
[2] Taian Zhongyan Composite Mat Technol Co Ltd, Tai An 271000, Shandong, Peoples R China
关键词
THIN-FILM; TRANSPARENT; NANOTUBE; PERFORMANCE; HEATER;
D O I
10.1021/acs.iecr.1c00964
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Carbon nanomaterials are ideal fillers in composites for electrothermal applications due to their ultrahigh electrical conductivity, thermal conductivity, and excellent mechanical property. In this study, high-performance electrothermal laminate films were prepared by a layer-by-layer process, which used tannic acid-functionalized multiwalled carbon nanotubes as filler and thermoplastic polyurethane as substrate. The prepared electrothermal laminate films exhibit excellent mechanical property, electrical heating property, and high electrothermal performance, which can reach steady-state temperature in about 120 s. Additionally, the maximum steady-state temperature can reach similar to 150 degrees C at 20 V. During 10 different cycles of experiments and 5 h aging time, no significant change in temperature was observed. Moreover, from the results, it is clear that the performance of the samples is related to the amount of filler added and the applied voltage, and we can precisely control the sample performance by regulating the amount of filler addition and applied voltage. We believe that these electrothermal laminate films could be widely used in wearable heating cotton fabric, controllable electric heating module, floor heating, and deicing devices.
引用
收藏
页码:7844 / 7852
页数:9
相关论文
共 42 条
[1]  
Azam M. A., 2014, MAT PROCESS REP, V30, pA8
[2]   Promising applications of graphene and graphene-based nanostructures [J].
Bich Ha Nguyen ;
Van Hieu Nguyen .
ADVANCES IN NATURAL SCIENCES-NANOSCIENCE AND NANOTECHNOLOGY, 2016, 7 (02)
[3]   Study of electric heating effects on carbon nanotube polymer composites [J].
Chu, Kunmo ;
Yun, Dong-Jin ;
Kim, Dongouk ;
Park, Hyokeun ;
Park, Sung-Hoon .
ORGANIC ELECTRONICS, 2014, 15 (11) :2734-2741
[4]   Carbon Nanotubes: Present and Future Commercial Applications [J].
De Volder, Michael F. L. ;
Tawfick, Sameh H. ;
Baughman, Ray H. ;
Hart, A. John .
SCIENCE, 2013, 339 (6119) :535-539
[5]   Synthesis of carbon nanotube/epoxy composite films with a high nanotube loading by a mixed-curing-agent assisted layer-by-layer method and their electrical conductivity [J].
Feng, Qing-Ping ;
Yang, Jiao-Ping ;
Fu, Shao-Yun ;
Mai, Yiu-Wing .
CARBON, 2010, 48 (07) :2057-2062
[6]   Effect of acid treatment on carbon nanotube-based flexible transparent conducting films [J].
Geng, Hong-Zhang ;
Kim, Ki Kang ;
So, Kang Pyo ;
Lee, Young Sil ;
Chang, Youngkyu ;
Lee, Young Hee .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2007, 129 (25) :7758-+
[7]   Single wall carbon nanotube/polyethylene nanocomposites: Thermal and electrical conductivity [J].
Haggenmueller, Reto ;
Guthy, Csaba ;
Lukes, Jennifer R. ;
Fischer, John E. ;
Winey, Karen I. .
MACROMOLECULES, 2007, 40 (07) :2417-2421
[8]   HELICAL MICROTUBULES OF GRAPHITIC CARBON [J].
IIJIMA, S .
NATURE, 1991, 354 (6348) :56-58
[9]   Electrical conductivity and self-temperature-control heating properties of carbon nanotubes filled polyethylene films [J].
Isaji, Setsuko ;
Bin, Yuezhen ;
Matsuo, Masaru .
POLYMER, 2009, 50 (04) :1046-1053
[10]   A review of production methods of carbon nanotube and graphene thin films for electrothermal applications [J].
Janas, D. ;
Koziol, K. K. .
NANOSCALE, 2014, 6 (06) :3037-3045