Piezoresistive effect of individual electrospun carbon nanofibers for strain sensing

被引:33
作者
Cai, Jizhe [1 ]
Chawla, Sneha [2 ]
Naraghi, Mohammad [1 ]
机构
[1] Texas A&M Univ, Dept Aerosp Engn, College Stn, TX 77843 USA
[2] Texas A&M Univ, Dept Mat Sci & Engn, College Stn, TX 77843 USA
关键词
THICK-FILM RESISTORS; ELECTRICAL-CONDUCTIVITY; THERMAL-CONDUCTIVITY; POISSON RATIO; NANOTUBE; NANOCOMPOSITES; TEMPERATURE; ENHANCEMENT;
D O I
10.1016/j.carbon.2014.05.078
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Piezoresistive behavior of individual electrospun carbon nanofibers (CNF) was studied for the first time via a microelectromechanical systems platform. The gage factor of CNFs was found to vary from 1.96 to 2.55, not correlating with nanofiber diameter. The measured strain sensitivity of electrical resistance of individual CNFs could not be solely explained based on strain induced dimensional changes of CNFs, pointing to piezoresistivity in nanofibers. The microstructure of CNFs was studied via TEM imaging and Raman spectroscopy, suggesting the presence of sp(2) and sp(3) hybridized carbon atoms in CNFs. The piezoresistivity of CNFs was explained in light of their hybrid structure. A one-dimensional model was adopted to relate CNFs piezoresistivity to their microstructure and electron tunneling between sp(2) hybridized regions through sp(3) hybridized regions. The calibrated model revealed tunneling distances of 0.15-0.3 nm between sp(2) hybridized atoms. Moreover, our study pointed to the degree of graphitization and elastic mismatch between differently hybridized carbon atom regions in CNFs as critical parameters controlling CNFs' piezoresistivity. This study sets the stage for the utilization of CNFs, not just as load bearing elements, but also as multifunctional nanoscale components with strain sensing capabilities, for instance in Nanoelectro-mechanical systems applications. (C) 2014 Elsevier Ltd. All rights reserved.
引用
收藏
页码:738 / 746
页数:9
相关论文
共 37 条
[1]   Piezoresistive Strain Sensors Made from Carbon Nanotubes Based Polymer Nanocomposites [J].
Alamusi ;
Hu, Ning ;
Fukunaga, Hisao ;
Atobe, Satoshi ;
Liu, Yaolu ;
Li, Jinhua .
SENSORS, 2011, 11 (11) :10691-10723
[2]   Strong carbon nanofibers from electrospun polyacrylonitrile [J].
Arshad, Salman N. ;
Naraghi, Mohammad ;
Chasiotis, Ioannis .
CARBON, 2011, 49 (05) :1710-1719
[3]  
Balandin AA, 2011, NAT MATER, V10, P569, DOI [10.1038/nmat3064, 10.1038/NMAT3064]
[4]   Thermogravimetric analysis of the oxidation of multiwalled carbon nanotubes: Evidence for the role of defect sites in carbon nanotube chemistry [J].
Bom, D ;
Andrews, R ;
Jacques, D ;
Anthony, J ;
Chen, BL ;
Meier, MS ;
Selegue, JP .
NANO LETTERS, 2002, 2 (06) :615-619
[5]   Disorder, clustering, and localization effects in amorphous carbon [J].
Carey, JD ;
Silva, SRP .
PHYSICAL REVIEW B, 2004, 70 (23) :1-8
[6]   Effect of twist and porosity on the electrical conductivity of carbon nanofiber yarns [J].
Chawla, S. ;
Naraghi, M. ;
Davoudi, A. .
NANOTECHNOLOGY, 2013, 24 (25)
[7]   Conductivity enhancement of carbon nanotube and nanofiber-based polymer nanocomposites by melt annealing [J].
Cipriano, Bani H. ;
Kota, Arun K. ;
Gershon, Alan L. ;
Laskowski, Conrad J. ;
Kashiwagi, Takashi ;
Bruck, Hugh A. ;
Raghavan, Srinivasa R. .
POLYMER, 2008, 49 (22) :4846-4851
[8]   Carbon nanotubes as piezoresistive microelectromechanical sensors: Theory and experiment [J].
Cullinan, Michael A. ;
Culpepper, Martin L. .
PHYSICAL REVIEW B, 2010, 82 (11)
[9]   Electrical conductivity of individual carbon nanotubes [J].
Ebbesen, TW ;
Lezec, HJ ;
Hiura, H ;
Bennett, JW ;
Ghaemi, HF ;
Thio, T .
NATURE, 1996, 382 (6586) :54-56
[10]   LASER RAMAN-SPECTROSCOPY FOR DETERMINATION OF THE C-C BONDING LENGTH IN CARBON [J].
FITZER, E ;
ROZPLOCH, F .
CARBON, 1988, 26 (04) :594-595