Hostname: page-component-76fb5796d-vvkck Total loading time: 0 Render date: 2024-04-27T02:30:28.873Z Has data issue: false hasContentIssue false

Method for Fabricating Arrays of Graphene Nanoribbons

Published online by Cambridge University Press:  07 July 2011

Pavel Khokhlov
Affiliation:
Carben Semicon Ltd., 385 Oyster Point Blvd., Suite 9A, South San Francisco, CA 94080, USA
Pavel Lazarev
Affiliation:
Carben Semicon Ltd., 385 Oyster Point Blvd., Suite 9A, South San Francisco, CA 94080, USA
Evgeny Morozov
Affiliation:
Carben Semicon Ltd., 385 Oyster Point Blvd., Suite 9A, South San Francisco, CA 94080, USA
Get access

Abstract

This paper discusses recent progress made in developing an advanced sp2 carbon-based materials that can be produced by wet coating as a thin layer and processed to form highly ordered arrays of Graphene Nanoribbons (GNRs) that attach to the substrate on edge with their planes parallel to each other. The fabrication method is based on carbonization of organic molecules spatially preordered in crystalline film on the substrate. This material, named Ribtan, can be used to fabricate GNRs films over large areas that exhibit a very smooth film surface and can form strong covalent bonds to the substrate. The width (film thickness) of Ribtan GNRs can be controlled precisely down to a few nanometers. We demonstrated advantage of Ribtan material for application in supercapacitors as well as feasibility for use in transparent electrodes, solid tribological coatings, and thin film transistors.

Type
Research Article
Copyright
Copyright © Materials Research Society 2011

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. Geim, A.K., Science 324, 1530 (2009).Google Scholar
2. Bae, S., Kim, H., Lee, Y., Xu, X., Park, J.S., Zheng, Y., et al. , Nature Nanotech. 5, 574 (2010).Google Scholar
3. Chen, Z., Lin, Y.M., Rooks, M.J., Avouris, P., Physica E 40 (2), 228 (2007).Google Scholar
4. Han, M.Y., Ozyilmaz, B., Zhang, Y., Kim, P., PRL 98, 206805 (2007).Google Scholar
5. Cai, J., Ruffieux, P., Jaafar, R., Bieri, M., Braun, T., Blankenburg, S., et al. , Nature 466, 470 (2010).Google Scholar
6. Jiao, L., Zhang, L., Wang, X., Diankov, G., Dai, H., Nature 458, 877 (2009).Google Scholar
7. Khokhlov, P.E., Krivoschepov, A.K., Lazarev, P.I., Utochnikova, V.V., OSC’09, September 2009, London, UK.Google Scholar
8. Jian, K., Xianyu, H., Eakin, J., Gao, Y., Crawford, G.P., Hurt, R.H., Carbon 43 (2), 407 (2005).Google Scholar
9. Chan, C., Crawford, G., Gao, Y., Hurt, R., Jian, K., Li, H., et al. ., Carbon 43, 2431 (2005).Google Scholar
10. Chmiola, J., Yushin, G., Gogotsi, Y., Portet, C., Simon, P., Taberna, P. L., Science 313, 1760 (2006).Google Scholar