External Bias Dependent Direct To Indirect Bandgap Transition in Graphene Nanoribbon
arXiv:1006.5119 · doi:10.1021/nl100909n
Abstract
In this work, using self-consistent tight-binding calculations, for the first time, we show that a direct to indirect bandgap transition is possible in an armchair graphene nanoribbon by the application of an external bias along the width of the ribbon, opening up the possibility of new device applications. With the help of Dirac equation, we qualitatively explain this bandgap transition using the asymmetry in the spatial distribution of the perturbation potential produced inside the nanoribbon by the external bias. This is followed by the verification of the bandgap trends with a numerical technique using Magnus expansion of matrix exponentials. Finally, we show that the carrier effective masses possess tunable sharp characters in the vicinity of the bandgap transition points.
Accepted for publication in Nano Letters
References in corpus (12)
- Electric Field Effect in Atomically Thin Carbon Films
- Energy Gaps in Graphene Nanoribbons
- Half-Metallic Graphene Nanoribbons
- Intrinsic and Extrinsic Performance Limits of Graphene Devices on SiO2
- Unconventional quantum Hall effect and Berry's phase of 2pi in bilayer graphene
- Gate-induced insulating state in bilayer graphene devices
- Electronic States of Graphene Nanoribbons
- The Magnus expansion and some of its applications
- A Graphene Field-Effect Device
- Edge States and the Quantized Hall Effect in Graphene
- Armchair graphene nanoribbons: Electronic structure and electric field modulation
- Transverse field effect in graphene ribbons
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