Lightweight conductive graphene/thermoplastic polyurethane foams with ultrahigh compressibility for piezoresistive sensing

被引:630
|
作者
Liu, Hu [1 ,2 ]
Dong, Mengyao [1 ]
Huang, Wenju [1 ]
Gao, Jiachen [1 ]
Dai, Kun [1 ]
Guo, Jiang [2 ]
Zheng, Guoqiang [1 ]
Liu, Chuntai [1 ]
Shen, Changyu [1 ]
Guo, Zhanhu [2 ]
机构
[1] Zhengzhou Univ, Coll Mat Sci & Engn, Key Lab Mat Proc & Mold, Minist Educ, Zhengzhou 450001, Henan, Peoples R China
[2] Univ Tennessee, Dept Chem & Biomol Engn, ICL, Knoxville, TN 37996 USA
基金
中国博士后科学基金;
关键词
INDUCED PHASE-SEPARATION; TISSUE ENGINEERING SCAFFOLD; HUMAN-MOTION DETECTION; STRAIN SENSORS; CARBON NANOTUBES; COMPOSITE FOAMS; GRAPHENE; NANOCOMPOSITES; BEHAVIORS; AEROGELS;
D O I
10.1039/c6tc03713e
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Lightweight conductive porous graphene/thermoplastic polyurethane (TPU) foams with ultrahigh compressibility were successfully fabricated by using the thermal induced phase separation (TISP) technique. The density and porosity of the foams were calculated to be about 0.11 g cm(-3) and 90% owing to the porous structure. Compared with pure TPU foams, the addition of graphene could effectively increase the thickness of the cell wall and hinder the formation of small holes, leading to a robust porous structure with excellent compression property. Meanwhile, the cell walls with small holes and a dendritic structure were observed due to the flexibility of graphene, endowing the foam with special positive piezoresistive behaviors and peculiar response patterns with a deflection point during the cyclic compression. This could effectively enhance the identifiability of external compression strain when used as piezoresistive sensors. In addition, larger compression sensitivity was achieved at a higher compression rate. Due to high porosity and good elasticity of TPU, the conductive foams demonstrated good compressibility and stable piezoresistive sensing signals at a strain of up to 90%. During the cyclic piezoresistive sensing test under different compression strains, the conductive foam exhibited good recoverability and reproducibility after the stabilization of cyclic loading. All these suggest that the fabricated conductive foam possesses great potential to be used as lightweight, flexible, highly sensitive, and stable piezoresistive sensors.
引用
收藏
页码:73 / 83
页数:11
相关论文
共 50 条
  • [31] Pristine graphene stabilized emulsions as the basis for flexible conductive foams for oil and pressure sensing
    Woltornist, Steven
    Varghese, Deepthi
    Massucci, Daniel
    Dobrynin, Andrey
    Adamson, Douglas
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2015, 250
  • [32] Conductive herringbone structure carbon nanotube/thermoplastic polyurethane porous foam tuned by epoxy for high performance flexible piezoresistive sensor
    Wei, Xiangdong
    Cao, Xiaohan
    Wang, Yalong
    Zheng, Guoqiang
    Dai, Kun
    Liu, Chuntai
    Shen, Changyu
    COMPOSITES SCIENCE AND TECHNOLOGY, 2017, 149 : 166 - 177
  • [33] A study of conductive thermoplastic elastomeric polyurethane and graphene nanocomposite thin films for application to flexible electrical sensors
    Debao Z.
    Bai J.
    Yang N.
    Li X.
    Miao C.
    Zhao L.
    Materials Research Innovations, 2021, 25 (03) : 162 - 168
  • [34] The influence of gradient and sandwich configurations on the electromagnetic interference shielding performance of multilayered thermoplastic polyurethane/graphene composite foams
    Li, Yang
    Shen, Bin
    Yi, Da
    Zhang, Lihua
    Zhai, Wentao
    Wei, Xingchang
    Zheng, Wenge
    COMPOSITES SCIENCE AND TECHNOLOGY, 2017, 138 : 209 - 216
  • [35] Flexible thermoplastic polyurethane/reduced graphene oxide composite foams for electromagnetic interference shielding with high absorption characteristic
    Jiang, Qiuyue
    Liao, Xia
    Li, Junsong
    Chen, Jia
    Wang, Gui
    Yi, Jian
    Yang, Qi
    Li, Guangxian
    COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2019, 123 : 310 - 319
  • [36] Electrically conductive strain sensing polyurethane nanocomposites with synergistic carbon nanotubes and graphene bifillers
    Liu, Hu
    Gao, Jiachen
    Huang, Wenju
    Dai, Kun
    Zheng, Guoqiang
    Liu, Chuntai
    Shen, Changyu
    Yan, Xingru
    Guo, Jiang
    Guo, Zhanhu
    NANOSCALE, 2016, 8 (26) : 12977 - 12989
  • [37] Lightweight thermoplastic polyurethane/multi-wall carbon nanotube foams with a continuous gradient cell structure for electromagnetic interference shielding
    Wang, Dongfang
    Li, Jialong
    Zheng, Lun
    Sun, Xiang
    Sun, Mengfan
    Wang, Chen
    Bi, Zhaojie
    Zhou, Baokai
    Wang, Lixia
    Li, Qian
    ENERGY, 2024, 304
  • [38] Development of thermally conductive thermoplastic polyurethane composite foams via CO2 foaming-assisted filler networking
    Ghariniyat, Parisa
    Leung, Siu N.
    COMPOSITES PART B-ENGINEERING, 2018, 143 : 9 - 18
  • [39] Conductive thermoplastic polyurethane nanocomposite foams derived from a cellulose/MWCNTs aerogel framework: simultaneous enhancement of piezoresistance, strength, and endurance
    Fei, Yanpei
    Chen, Feng
    Fang, Wei
    Hejna, Aleksander
    Xu, Lixin
    Liu, Tong
    Zhong, Mingqiang
    Yang, Jintao
    Kuang, Tairong
    Kuang, Tairong (kuangtr@zjut.edu.cn), 1600, Royal Society of Chemistry (09) : 13103 - 13114
  • [40] Conductive thermoplastic polyurethane nanocomposite foams derived from a cellulose/MWCNTs aerogel framework: simultaneous enhancement of piezoresistance, strength, and endurance
    Fei, Yanpei
    Chen, Feng
    Fang, Wei
    Hejna, Aleksander
    Xu, Lixin
    Liu, Tong
    Zhong, Mingqiang
    Yang, Jintao
    Kuang, Tairong
    JOURNAL OF MATERIALS CHEMISTRY C, 2021, 9 (38) : 13103 - +