Flexible and high-performance piezoresistive strain sensors based on carbon nanoparticles@polyurethane sponges

被引:159
作者
Zhang, Xuezhong [1 ]
Xiang, Dong [1 ]
Zhu, Wanqiu [1 ]
Zheng, Yongfeng [1 ]
Harkin-Jones, Eileen [2 ]
Wang, Ping [1 ]
Zhao, Chunxia [1 ]
Li, Hui [1 ]
Wang, Bin [1 ]
Li, Yuntao [1 ]
机构
[1] Southwest Petr Univ, Sch New Energy & Mat, Chengdu 610500, Peoples R China
[2] Univ Ulster, Sch Engn, Jordanstown BT37 0QB, North Ireland
关键词
Piezoresistive; Strain sensor; Self-assembly; Carbon nanotube; Graphene nanoplatelet; POLYMER/CARBON NANOTUBE; COMPOSITES; NANOCOMPOSITES; LIGHTWEIGHT; BLACK; FOAM;
D O I
10.1016/j.compscitech.2020.108437
中图分类号
TB33 [复合材料];
学科分类号
摘要
In this work, flexible and high-performance piezoresistive strain sensors were fabricated by simple layer-by-layer electrostatic self-assembly of carbon nanoparticles on commercial polyurethane (PU) sponges. It was shown that the sponge-based strain sensors exhibited obviously positive and negative piezoresistive characteristics under tensile and compressive strains, respectively. The alternate assembly of carbon nanotubes (CNTs) and graphene nanoplatelets (GNPs) contributed to the construction of a more complete conductive network and significantly improved the sensing performance of the sensor due to the synergistic effect between CNTs and GNPs. Compared with the CNT@PU and CNT/GNP@PU sponge strain sensors, the CNT/GNP/CNT@PU sensor had a larger strain detection range and higher linearity. Besides, the CNT/GNP/CNT@PU sponge strain sensor showed high sensitivity (GF = 43,000 at 60% tensile strain and GF = -1.1 at 50% compressive strain), responsive capability to very small strain (0.05%) and outstanding stability during 3000 loading cycles. Due to its excellent sensing performance, the CNT/GNP/CNT@PU sensor enabled monitoring of various physiological activities, including finger movements, wrist bending and walking etc. In addition, a 5 x 5 sensor array based on the sponge-based strain sensor was prepared to achieve accurate identification of weight distribution. This study provides valuable information for the development of flexible strain sensors with high-performance and low-cost.
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页数:9
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共 42 条
[1]   Bridging functional nanocomposites to robust macroscale devices [J].
Begley, Matthew R. ;
Gianola, Daniel S. ;
Ray, Tyler R. .
SCIENCE, 2019, 364 (6447) :1250-+
[2]   Sensitive, High-Strain, High-Rate Bodily Motion Sensors Based on Graphene-Rubber Composites [J].
Boland, Conor S. ;
Khan, Umar ;
Backes, Claudia ;
O'Neill, Arlene ;
McCauley, Joe ;
Duane, Shane ;
Shanker, Ravi ;
Liu, Yang ;
Jurewicz, Izabela ;
Dalton, Alan B. ;
Coleman, Jonathan N. .
ACS NANO, 2014, 8 (09) :8819-8830
[3]   Electrical conductivity enhancement in thermoplastic polyurethane-graphene nanoplatelet composites by stretch-release cycles [J].
Cataldi, Pietro ;
Ceseracciu, Luca ;
Marras, Sergio ;
Athanassiou, Athanassia ;
Bayer, Ilker S. .
APPLIED PHYSICS LETTERS, 2017, 110 (12)
[4]   Facile fabrication and performance of robust polymer/carbon nanotube coated spandex fibers for strain sensing [J].
Chen, Qin ;
Xiang, Dong ;
Wang, Lei ;
Tang, Yuhao ;
Harkin-Jones, Eileen ;
Zhao, Chunxia ;
Li, Yuntao .
COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2018, 112 :186-196
[5]   Ultrasensitive Cracking-Assisted Strain Sensors Based on Silver Nanowires/Graphene Hybrid Particles [J].
Chen, Song ;
Wei, Yong ;
Wei, Siman ;
Lin, Yong ;
Liu, Lan .
ACS APPLIED MATERIALS & INTERFACES, 2016, 8 (38) :25563-25570
[6]   3D printed highly elastic strain sensors of multiwalled carbon nanotube/thermoplastic polyurethane nanocomposites [J].
Christ, Josef F. ;
Aliheidari, Nahal ;
Ameli, Amir ;
Poetschke, Petra .
MATERIALS & DESIGN, 2017, 131 :394-401
[7]   Enhanced Solid Particle Erosion Properties of Thermoplastic Polyurethane-Carbon Nanotube Nanocomposites [J].
Dong, Mengyao ;
Wang, Chuan ;
Liu, Hu ;
Liu, Chuntai ;
Shen, Changyu ;
Zhang, Jiaoxia ;
Jia, Chengxinzhuo ;
Ding, Tao ;
Guo, Zhanhu .
MACROMOLECULAR MATERIALS AND ENGINEERING, 2019, 304 (05)
[8]   Highly stretchable printed strain sensors using multi-walled carbon nanotube/silicone rubber composites [J].
Giffney, Tim ;
Bejanin, Estelle ;
Kurian, Agee S. ;
Travas-Sejdic, Jadranka ;
Aw, Kean .
SENSORS AND ACTUATORS A-PHYSICAL, 2017, 259 :44-49
[9]   Highly responsive flexible strain sensor using polystyrene nanoparticle doped reduced graphene oxide for human health monitoring [J].
Gong, Tianxun ;
Zhang, Hua ;
Huang, Wen ;
Mao, Linna ;
Ke, Yizhen ;
Gao, Min ;
Yu, Bin .
CARBON, 2018, 140 :286-295
[10]   Stretchable and compressible strain sensor based on carbon nanotube foam/polymer nanocomposites with three-dimensional networks [J].
Hao, Bin ;
Mu, Lei ;
Ma, Qing ;
Yang, Sudong ;
Ma, Peng-Cheng .
COMPOSITES SCIENCE AND TECHNOLOGY, 2018, 163 :162-170