Highly stretchable and sensitive piezoresistive carbon nanotube/elastomeric triisocyanate-crosslinked polytetrahydrofuran nanocomposites

被引:23
作者
Wang, Yunming [1 ,2 ]
Mi, Hongyi [3 ]
Zheng, Qifeng [1 ,2 ]
Zhang, Huilong [3 ]
Ma, Zhenqiang [3 ]
Gong, Shaoqin [1 ,2 ]
机构
[1] Univ Wisconsin, Wisconsin Inst Discovery, Dept Biomed Engn, Madison, WI 53706 USA
[2] Univ Wisconsin, Mat Sci Program, Madison, WI 53706 USA
[3] Univ Wisconsin, Dept Elect & Comp Engn, Madison, WI 53706 USA
关键词
STRAIN SENSOR; INDUCED CRYSTALLIZATION; INCLUSION COMPLEXES; NANOTUBES; TRANSPARENT; COMPOSITES; CONDUCTORS; GRAPHENE; RUBBER; FILMS;
D O I
10.1039/c5tc03413b
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Piezoresistive polymer nanocomposites are highly desirable for flexible mechanical sensing applications. In this study, a family of multi-walled carbon nanotube (CNT)/elastomeric triisocyanate-crosslinked polytetrahydrofuran (ETC-PTHF) nanocomposites that are highly stretchable and highly sensitive to mechanical stimuli were designed, synthesized, and characterized. The CNTs in the CNT/ETC-PTHF nanocomposites were initially dispersed in the ETC-PTHF matrix uniformly, leading to a relatively high electrical conductivity. Upon stretching, both the degree of CNT alignment along the stretching direction and the degree of PTHF crystallinity increased consistently with the tensile strain. The strain-induced microstructure change adversely affected the CNT conducting pathways, thereby reducing the electrical conductivity of the nanocomposites. For instance, the electrical conductivity of the 15 wt% CNT/ETC-PTHF nanocomposites decreased by approximately 7.3%, 29.2%, and 19.76, 169.2 and 1291 times when the tensile strain was 1%, 5%, 50%, 250%, and 500%, respectively. The nanocomposite film was able to detect a mechanical stimulus (poking) weaker than the landing force of a mosquito. Furthermore, the nanocomposite film demonstrated rapid and highly sensitive responses to continuous finger motion. These new piezoresistive CNT/ETC-PTHF nanocomposites possess a number of desirable characteristics including ease of fabrication, low cost, and high sensitivity, thereby making them very promising candidates for applications in electronic skins, electronic textiles, and biomedical detectors.
引用
收藏
页码:460 / 467
页数:8
相关论文
共 39 条
[1]  
Amjadi M, 2015, PROC IEEE MICR ELECT, P744, DOI 10.1109/MEMSYS.2015.7051065
[2]   Highly Stretchable and Sensitive Strain Sensor Based on Silver Nanowire-Elastomer Nanocomposite [J].
Amjadi, Morteza ;
Pichitpajongkit, Aekachan ;
Lee, Sangjun ;
Ryu, Seunghwa ;
Park, Inkyu .
ACS NANO, 2014, 8 (05) :5154-5163
[3]  
[Anonymous], 2012, Advanced Engineering Electromagnetics
[4]   Graphene-based transparent strain sensor [J].
Bae, Sang-Hoon ;
Lee, Youngbin ;
Sharma, Bhupendra K. ;
Lee, Hak-Joo ;
Kim, Jae-Hyun ;
Ahn, Jong-Hyun .
CARBON, 2013, 51 :236-242
[5]  
Chen ZP, 2011, NAT MATER, V10, P424, DOI [10.1038/NMAT3001, 10.1038/nmat3001]
[6]   Highly Stretchable Resistive Pressure Sensors Using a Conductive Elastomeric Composite on a Micropyramid Array [J].
Choong, Chwee-Lin ;
Shim, Mun-Bo ;
Lee, Byoung-Sun ;
Jeon, Sanghun ;
Ko, Dong-Su ;
Kang, Tae-Hyung ;
Bae, Jihyun ;
Lee, Sung Hoon ;
Byun, Kyung-Eun ;
Im, Jungkyun ;
Jeong, Yong Jin ;
Park, Chan Eon ;
Park, Jong-Jin ;
Chung, U-In .
ADVANCED MATERIALS, 2014, 26 (21) :3451-3458
[7]   Stretching-induced interfacial crystalline structures and relevant mechanical properties in melt-spun polypropylene/whisker composite fibers [J].
Gao, Yao ;
Ren, Kun ;
Ning, Nanying ;
Fu, Qiang ;
Wang, Ke ;
Zhang, Qin .
POLYMER, 2012, 53 (13) :2792-2801
[8]   Strain sensing in polymer/carbon nanotube composites by electrical resistance measurement [J].
Georgousis, G. ;
Pandis, C. ;
Kalamiotis, A. ;
Georgiopoulos, P. ;
Kyritsis, A. ;
Kontou, E. ;
Pissis, P. ;
Micusik, M. ;
Czanikova, K. ;
Kulicek, J. ;
Omastova, M. .
COMPOSITES PART B-ENGINEERING, 2015, 68 :162-169
[9]   Highly stretchable and transparent nanomesh electrodes made by grain boundary lithography [J].
Guo, Chuan Fei ;
Sun, Tianyi ;
Liu, Qihan ;
Suo, Zhigang ;
Ren, Zhifeng .
NATURE COMMUNICATIONS, 2014, 5
[10]   Modelling stiffness of polymer/clay nanocomposites [J].
Hbaieb, K. ;
Wang, Q. X. ;
Chia, Y. H. J. ;
Cotterell, B. .
POLYMER, 2007, 48 (03) :901-909