Issue 6, 2014

Transition from direct to Fowler–Nordheim tunneling in chemically reduced graphene oxide film

Abstract

We investigate charge transport in a chemically reduced graphene oxide (RGO) film of sub-micron thickness. The IV curve of RGO film shows current switching of the order of ∼105 above the threshold voltage. We found that the observed IV curve is consistent with quantum tunnelling based charge transport. The quantum tunnelling based Simmons generalized theory was used to interpret the charge transport mechanism which shows that the current switching phenomenon is associated with transition from direct to Fowler–Nordheim (F–N) tunneling. The absence of current switching in the IV curve after stripping away the oxygen functional groups from chemically RGO film confirms that the presence of these groups and reduced interaction between adjacent layers of RGO play a key role in charge transport. Such metal-based current switching devices may find applications in graphene-based electronic devices such as high voltage resistive switching devices.

Graphical abstract: Transition from direct to Fowler–Nordheim tunneling in chemically reduced graphene oxide film

Article information

Article type
Paper
Submitted
24 Oct 2013
Accepted
27 Dec 2013
First published
07 Jan 2014

Nanoscale, 2014,6, 3410-3417

Author version available

Transition from direct to Fowler–Nordheim tunneling in chemically reduced graphene oxide film

S. Pandey, C. Biswas, T. Ghosh, J. J. Bae, P. Rai, G. Kim, K. J. Thomas, Y. H. Lee, P. Nikolaev and S. Arepalli, Nanoscale, 2014, 6, 3410 DOI: 10.1039/C3NR05675A

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