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Sensors  2014 

Stretchable and Flexible High-Strain Sensors Made Using Carbon Nanotubes and Graphite Films on Natural Rubber

DOI: 10.3390/s140100868

Keywords: piezoresistive sensor, soft wearable sensors, electro-mechanical properties, film composite, stretchable device, carbon nanotubes, health monitoring

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Abstract:

Conventional metallic strain sensors are flexible, but they can sustain maximum strains of only ~5%, so there is a need for sensors that can bear high strains for multifunctional applications. In this study, we report stretchable and flexible high-strain sensors that consist of entangled and randomly distributed multiwall carbon nanotubes or graphite flakes on a natural rubber substrate. Carbon nanotubes/graphite flakes were sandwiched in natural rubber to produce these high-strain sensors. Using field emission scanning electron microscopy, the morphology of the films for both the carbon nanotube and graphite sensors were assessed under different strain conditions (0% and 400% strain). As the strain was increased, the films fractured, resulting in an increase in the electrical resistance of the sensor; this change was reversible. Strains of up to 246% (graphite sensor) and 620% (carbon nanotube sensor) were measured; these values are respectively ~50 and ~120 times greater than those of conventional metallic strain sensors.

References

[1]  Moshfegh, S.; Ebrahimi, N. Strain sensors based on graphite fillers. Iran Polym. J. 2004, 13, 113–119.
[2]  Dobie, W.B.; Isaac, P.C.G. Electric Resistance Strain Gauges; English Universities Press Limited: Madison, WI, USA, 1948.
[3]  Hu, B.; Chen, W.; Zhou, J. High performance flexible sensor based on inorganic nanomaterials. Sens. Actuators B: Chem. 2013, 176, 522–533.
[4]  Zou, J.-F.; Yu, Z.-Z.; Pan, Y.-X.; Fang, X.-P.; Ou, Y.-C. Conductive mechanism of polymer/graphite conducting composites with low percolation threshold. J. Polym. Sci. Part B: Polym. Phys. 2002, 40, 954–963.
[5]  Wang, L.; Ding, T.; Wang, P. Thin flexible pressure sensor array based on carbon black/silicone rubber nanocomposite. IEEE Sens. J. 2009, 9, 1130–1135.
[6]  Dinh-Trong, N.; Steitz, J.; Bu, L.; Kanoun, O. Influence of the Composition of MWCNTs Layers on the Properties of Strain Gauges. Proceedings of the 9th IEEE Conference on Nanotechnology (IEEE-NANO 2009), Genoa, Italy, 26–30 July 2009; pp. 477–480.
[7]  Li, X.; Zhang, R.; Yu, W.; Wang, K.; Wei, J.; Wu, D.; Cao, A.; Li, Z.; Cheng, Y.; Zheng, Q.; et al. Stretchable and highly sensitive graphene-on-polymer strain sensors. Sci. Rep. 2012, 2, 870.
[8]  Levin, Z.S.; Robert, C.; Feller, J.F.; Castro, M.; Grunlan, J.C. Flexible latex-polyaniline segregated network composite coating capable of measuring large strain on epoxy. Smart Mater. Struct. 2013, 22, 1–9.
[9]  Yamada, T.; Hayamizu, Y.; Yamamoto, Y.; Yomogida, Y.; Izadi-Najafabadi, A.; Futaba, D.; Hata, K. A stretchable carbon nanotube strain sensor for human-motion detection. Nat. Nanotechnol. 2011, 6, 296–301.
[10]  Hin, M.; Oh, J.; Lima, M.; Kozlov, M.; Kim, S.; Baughman, R. Elastomeric conductive composites based on carbon nanotube forests. Adv. Mater. 2010, 22, 2663–2667.
[11]  Singjai, P.; Changsarn, S.; Thongtem, S. Electrical resistivity of bulk multi-walled carbon nanotubes synthesized by an infusion chemical vapor deposition method. Mater. Sci. Eng. A 2007, 443, 42–46.
[12]  Hu, N.; Karube, Y.; Arai, M.; Watanabe, T.; Yan, C.; Li, Y.; Liu, Y.; Fukunaga, H. Investigation on sensitivity of a polymer/carbon nanotube composite strain sensor. Carbon 2010, 48, 680–687.
[13]  Li, X.; Levy, C.; Agarwal, A.; Datye, A.; Elaadil, L.; Keshri, A.K.; Li, M. Multifunctional carbon nanotube film composite for structure health monitoring and damping. Open Constr. Build. Technol. J. 2009, 3, 146–152.
[14]  Xu, W.; Allen, M.G. Deformable strain sensors based on patterned MWCNTs/polydimethyl-siloxane composites. J. Polym. Sci. Part B: Polym. Phys. 2013, 51, 1505–1512.
[15]  Slobodian, P.; Riha, P.; Saha, P. A highly-deformable composite composed of an entangled network of electrically-conductive carbon-nanotubes embedded in elastic poly-urethane. Carbon 2012, 50, 3446–3453.
[16]  Li, C.; Thostenson, E.T.; Chou, T.-W. Dominant role of tunneling resistance in the electrical conductivity of carbon nanotube-based composites. Appl. Phys. Lett. 2007, 91, 223114:1–223114:3.

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