Narrow graphene nanoribbons from carbon nanotubes
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- 1 April 2009
- journal article
- Published by Springer Nature in Nature
- Vol. 458 (7240), 877-880
- https://doi.org/10.1038/nature07919
Abstract
Graphene nanoribbons (GNRs) are materials with properties distinct from those of other carbon allotropes. The all-semiconducting nature of sub-10-nm GNRs could bypass the problem of the extreme chirality dependence of the metal or semiconductor nature of carbon nanotubes (CNTs) in future electronics. Currently, making GNRs using lithographic, chemical or sonochemical methods is challenging. It is difficult to obtain GNRs with smooth edges and controllable widths at high yields. Here we show an approach to making GNRs by unzipping multiwalled carbon nanotubes by plasma etching of nanotubes partly embedded in a polymer film. The GNRs have smooth edges and a narrow width distribution (10-20 nm). Raman spectroscopy and electrical transport measurements reveal the high quality of the GNRs. Unzipping CNTs with well-defined structures in an array will allow the production of GNRs with controlled widths, edge structures, placement and alignment in a scalable fashion for device integration.Keywords
This publication has 29 references indexed in Scilit:
- Charge transport in disordered graphene-based low dimensional materialsNano Research, 2008
- Bulk Production of a New Form of sp2 Carbon: Crystalline Graphene NanoribbonsNano Letters, 2008
- Controlled nanocutting of grapheneNano Research, 2008
- Crystallographic Etching of Few-Layer GrapheneNano Letters, 2008
- Tailoring the atomic structure of graphene nanoribbons by scanning tunnelling microscope lithographyNature Nanotechnology, 2008
- Room-Temperature All-Semiconducting Sub-10-nm Graphene Nanoribbon Field-Effect TransistorsPhysical Review Letters, 2008
- Chemically Derived, Ultrasmooth Graphene Nanoribbon SemiconductorsScience, 2008
- Graphene nano-ribbon electronicsPhysica E: Low-dimensional Systems and Nanostructures, 2007
- Energy Band-Gap Engineering of Graphene NanoribbonsPhysical Review Letters, 2007
- Electric Field Effect in Atomically Thin Carbon FilmsScience, 2004