Hostname: page-component-cd9895bd7-dzt6s Total loading time: 0 Render date: 2024-12-27T02:16:30.964Z Has data issue: false hasContentIssue false

Strain-Based Electrical Properties of Systems of Carbon Nanotubes Embedded in Parylene

Published online by Cambridge University Press:  01 February 2011

Jon Brame
Affiliation:
Brigham Young University, Brigham Young University, Physics and Astronomy, Provo, UT, 84602, United States
Stephanie Getty
Affiliation:
[email protected], NASA GSFC, Code 541, Greenbelt, MD, 20771, United States
Johnathan Goodsell
Affiliation:
[email protected], Brigham Young University, Physics and Astronomy, Provo, UT, 84602, United States
David Dean Allred
Affiliation:
[email protected], Brigham Young University, Physics and Astronomy, N265 ESC, Provo, UT, 84602, United States
Get access

Abstract

We have fabricated flexible electronic devices to test the strain-based change in resistance of a network of single-walled carbon nanotubes (SWCNTs) for use in microscale, high resolution magnetometry. To do this, we first develop a simple, reliable method to obtain catalyst nanoparticles for carbon nanotube growth through indirect, thin-film evaporation. Next we fabricate a two-terminal SWCNT device on a rigid substrate. We then transfer the device, intact, to a flexible substrate for strain testing. Herein, we report progress in growth and measurement techniques.

Type
Research Article
Copyright
Copyright © Materials Research Society 2007

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

REFERENCES

1. Tombler, T., Zhou, C, Alexseyev, L, Kong, J, Dai, H, “Reversible electromechanical characteristics of carbon nanotubes under local-probe manipulation,” Nature vol.405, p. 769 (2000).Google Scholar
2. Maiti, A., Svizhenko, A., and Anantram, M. P., “Electronic Transport through Carbon Nanotubes: Effects of Structural Deformation and Tube Chirality,” Phys. Rev. Lett. vol.88, p. 126805 (2002).Google Scholar
3. Cao, J., Wang, Q., and Dai, H., “Electromechanical Properties of Metallic, Quasimetallic, and Semiconducting Carbon Nanotubes under Stretching,” Phys. Rev. Lett. vol.90, p. 157601 (2003).Google Scholar
4. Stampfer, C., Jungen, A, Hierold - Sensors, C, “Fabrication of Single-Walled Carbon-Nanotube-Based Pressure Sensors,” Nano Letters vol.6, p. 233 (2006).Google Scholar
5. Su, Y., Evans, A. G. R., and Brunnschweiler, A., “Micromachined silicon cantilever paddles with piezoresistive readout for flow sensing,” J. Micromech. Microeng . v. 6, p. 69 (1996).Google Scholar
6. Dharap, P., Li, Z, Nagarajaiah, S, Barrera, EV, “Nanotube film based on single-wall carbon nanotubes for strain sensing,” Nanotechnology vol.15, p. 379 (2004).Google Scholar
7. Hafner, J. H., Bronikowski, MJ, Azamian, BR, Nikolaev, P,, “Catalytic growth of single-wall carbon nanotubes from metal particles,” Chem. Phys. Lett. vol.296, p.195 (1998).Google Scholar
8. Kong, J., Soh, HT, Cassell, AM, Quate, CF, Dai, HSynthesis of individual single-walled carbon nanotubes on patterned silicon wafers,” Nature vol.395, p. 878 (1998).Google Scholar
9. Lacerda, R. G., Teo, KBK, The, AS, Yang, MH, Dalal, SH, “Thin-film metal catalyst for the production of multi-wall and single-wall carbon nanotubes,” J. Appl. Phys. vol.96, p. 4456 (2004).Google Scholar
10. Hata, K., Futaba, DN, Mizuno, K, Namai, T, Yumura, M, “Water-Assisted Highly Efficient Synthesis of Impurity-Free Single-Walled Carbon Nanotubes,” Science vol.306, p. 1362 (2004).Google Scholar
11. Getty, S. A., Goodsell, J. E., Brame, J. A., Kletetschka, G., and Allred, D. D., “Electronic Properties of Single-Walled Carbon Nanotubes for a Strain-Based Magnetometer,” IEEE Transactions on Nanotechnology, 2006 in press.Google Scholar
12. Nikolaev, P., Bronikowski, M. J., Bradley, R. K., Rohmund, F., Colbert, D. T., Smith, K.A., Smalley, R. E., “Gas-phase catalytic growth of single-walled carbon nanotubes from carbon monoxide,” Chem. Phys. Lett. vol.313, p. 91 (1997).Google Scholar
13. Chan, R, Fung, CKM, Li., WJ, “Rapid assembly of carbon nanotubes for nanosensing by dielectrophoretic force,” Nanotechnology vol.15, p. 672 (2004).Google Scholar
14. Miserendino, S., Yoo, J, Cassell, A, Tai, YC, “Electrochemical characterization of paryleneembedded carbon nanotube nanoelectrode arrays,” Nanotechnology, vol.17, 23 (2006).Google Scholar