Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
1544961 | Physica E: Low-dimensional Systems and Nanostructures | 2013 | 7 Pages |
The influence of velocity on the guided modes, localized current density inside the channel and the Goos–Hänchen shift at the interface of graphene waveguide in the presence of a velocity barrier is investigated theoretically. It is found that each guided mode has a cutoff velocity determining the appearance of the oscillating wave mode and the velocity in the barrier regions can control the number of guided modes and the distribution of localized current density inside the channel. The number of guided modes and the conduction of graphene waveguide along the channel present a quantized feature for velocity. Finally, it is also indicated that the Goos–Hänchen shift at the interface of graphene waveguide can be well controlled by changing the velocity in barrier region.
Graphical abstractThe graphene waveguide in the presence of a velocity barrier presents a cutoff velocity for each guide mode and velocity-controlled Goos–Hänchen shift.Figure optionsDownload full-size imageDownload as PowerPoint slideHighlights► A cutoff velocity determining the appearance of each guided mode occurs. ► The conductance of graphene waveguide presents a quantized feature for velocity. ► Goos–Hänchen shift in graphene waveguide can be controlled by the velocity barrier.