Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
1553049 | Superlattices and Microstructures | 2015 | 7 Pages |
Abstract
We embed periodic SiO2 wires in an organic microcavity, producing a rectangular potential by the different optical thicknesses of the active layer due to the additional SiO2 layer. By μ-photoluminescence spectroscopy, we observe the energy dispersion of the photons and obtain discrete localized below and extended Bloch states above the potential barrier, respectively, showing that electro-magnetic waves can behave like massive particles, such as electrons, in crystal lattices. We investigate the dependencies on wire width and period and use the Kronig-Penney model to describe the photon energy dispersion, including an “effective mass” of a photon propagating through a microcavity implying polarization splitting. We obtain excellent agreement between experiment, simulation and analytical calculation.
Related Topics
Physical Sciences and Engineering
Materials Science
Electronic, Optical and Magnetic Materials
Authors
Franz J.F. Löchner, Andreas Mischok, Robert Brückner, Vadim G. Lyssenko, Alexander A. Zakhidov, Hartmut Fröb, K. Leo,