Nonlinear Self-Confined Plasmonic Beams: Experimental Proof
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Titre | Nonlinear Self-Confined Plasmonic Beams: Experimental Proof |
Type de publication | Journal Article |
Year of Publication | 2020 |
Auteurs | Kuriakose T, Renversez G, Nazabal V, Elsawy MMR, Coulon N, Nemec P, Chauvet M |
Journal | ACS PHOTONICS |
Volume | 7 |
Pagination | 2562-2570 |
Date Published | SEP 16 |
Type of Article | Article |
ISSN | 2330-4022 |
Mots-clés | chalcogenide glass, Modeling, nonlinear integrated plasmonics, optical Kerr effect, planar waveguides, self-confined waves |
Résumé | Controlling low power light beam self-confinement with ultrafast response time opens up opportunities for the development of signal processing in microdevices. The combination of a highly nonlinear medium with the tight confinement of plasmonic waves offers a viable but challenging configuration to reach this goal. In the present work, a beam propagating in a plasmonic structure that undergoes a strongly enhanced self-focusing effect is reported for the first time. The structure consists of a chalcogenide-based four-layer planar geometry engineered to limit plasmon propagation losses while exhibiting efficient Kerr self-focusing at moderate power. As expected from theory, only TM-polarized waves exhibit such a behavior. Different experimental arrangements are tested at telecom wavelengths and compared with simulations obtained from a dedicated model. The observed efficient beam reshaping takes place over a distance as low as 100 mu m, which unlocks new perspectives for the development of integrated photonic devices. |
DOI | 10.1021/acsphotonics.0c00906 |