Sie befinden Sich nicht im Netzwerk der Universität Paderborn. Der Zugriff auf elektronische Ressourcen ist gegebenenfalls nur via VPN oder Shibboleth (DFN-AAI) möglich. mehr Informationen...
Enhanced and tunable Goos-Hänchen shift of reflected light due to Tamm surface plasmons with Dirac semimetals
Ist Teil von
Results in physics, 2022-12, Vol.43, p.106105, Article 106105
Ort / Verlag
Elsevier B.V
Erscheinungsjahr
2022
Quelle
EZB Electronic Journals Library
Beschreibungen/Notizen
•Enhanced and tunable Goos-Hänchen shift of reflected light based on Tamm surface plasmons in three-dimensional Dirac semimetals, spacer layer and one-dimensional photonic crystal composite multilayer structure.•The Goos-Hänchen shift can be dynamically adjusted by appropriately changing the Fermi energy of BDS or controlling the structural parameters of the composite multilayer structure.•The Goos-Hänchen shift of Tamm surface plasmons in one-dimensional photonic crystal composite structure based on three-dimensional Dirac semimetals provides a new idea for the design of optical shift devices.
In this paper, enhanced and tunable Goos-Hänchen (GH) shift of reflected light beam at mid-infrared band can be theoretically achieved by using a multilayer structure where a bulk Dirac semimetal (BDS) layer is coated on a distributed bragg reflector (DBR) separated by a spacer layer. This enhanced GH phenomenon results from the local field enhancement owing to the excitation of Tamm surface plasmons at the interface between BDS layer and spacer layer. Numerical calculation shows that the GH shift can be switched from negative to positive by harnessing the bulk conductivity properties of BDS, and can also be actively tuned through the Fermi energy of BDS or by controlling the structural parameters. These enhanced and tunable GH shifts are promising for fabricating BDS-based infrared shift devices and other applications in nanophotonics.