Microscopic Mechanism of 1/f Noise in Graphene: Role of Energy Band Dispersion


Autoria(s): Atindra Pal, Nath; Ghatak, Subhamoy; Kochat, Vidya; ES, Sneha; Sampathkumar, Arjun; Raghavan, Srinivasan; Ghosh, Arindam
Data(s)

01/03/2011

Resumo

A distinctive feature of single-layer graphene is the linearly dispersive energy bands, which in the case of multilayer graphene become parabolic. A simple electrical transport-based probe to differentiate between these two band structures will be immensely valuable, particularly when quantum Hall measurements are difficult, such as in chemically synthesized graphene nanoribbons. Here we show that the flicker noise, or the 1/f noise, in electrical resistance is a sensitive and robust probe to the band structure of graphene. At low temperatures, the dependence of noise magnitude on the carrier density was found to be opposite for the linear and parabolic bands. We explain our data with a comprehensive theoretical model that clarifies several puzzling issues concerning the microscopic origin of flicker noise in graphene field-effect transistors (GraFET).

Formato

application/pdf

Identificador

http://eprints.iisc.ernet.in/36617/1/Microscopic.pdf

Atindra Pal, Nath and Ghatak, Subhamoy and Kochat, Vidya and ES, Sneha and Sampathkumar, Arjun and Raghavan, Srinivasan and Ghosh, Arindam (2011) Microscopic Mechanism of 1/f Noise in Graphene: Role of Energy Band Dispersion. In: ACS Nano, 5 (3). pp. 2075-2081.

Publicador

American Chemical Society

Relação

http://pubs.acs.org/doi/abs/10.1021/nn103273n

http://eprints.iisc.ernet.in/36617/

Palavras-Chave #Materials Research Centre #Physics
Tipo

Journal Article

PeerReviewed