Title :
Plasmon excitation and induced emission with a plasmonic self-organized crystal
Author :
Frederich, Hugo ; Lethiec, Clotilde ; Fangfang Wen ; Laverdant, Julien ; Schwob, C. ; Popescu, Traian ; Douillard, Ludovic ; Coolen, L. ; Maitre, A.
Author_Institution :
INSP, Univ. Pierre et Marie Curie - Paris 6, Paris, France
Abstract :
In this paper, we describe the plasmonic and plasmon-photon coupling properties of nanostructured metallic films obtained by a self-assembly protocol. A gold layer is deposited on top of a self-assembled deposition of silica beads (artificial opal), which thus acts as a template. Atomic-force and scanning-electron microscopies demonstrates a periodic pattern on the metal surface with groove depth (here labelled h) ranging from 55 to 150 nm. By optical gonioreflectometry, the surface plasmon modes of this structure are probed: plasmon creation appears as an absorption dip in the reflection spectra. The plasmon dispersion relation is probed as a function of h and shows, for the smaller values of h, a good agreement with an analytical model for vanishing h. By depositing nanocrystals on the structure and measuring the fluorescence radiation pattern, we demonstrate a method to estimate the plasmon extraction (plasmon-to-photon coupling) efficiency. Finally, we use photoemission electron microscopy to map the electric field of the plasmonic modes and characterize both propagative surface plasmon and localized (“hot spot”) plasmon modes.
Keywords :
atomic force microscopy; fluorescence; gold; metallic thin films; nanophotonics; nanostructured materials; photoelectron spectra; reflectometry; scanning electron microscopy; self-assembly; silicon compounds; surface plasmons; Au; SiO2; artificial opal; atomic-force microscopies; depth 55 nm to 150 nm; electric field; fluorescence radiation pattern; gold layer; groove depth; induced emission; localized plasmon modes; nanostructured metallic films; optical gonioreflectometry; photoemission electron microscopy; plasmon dispersion relation; plasmon excitation; plasmon-photon coupling properties; plasmonic self-organized crystal; reflection spectra; scanning-electron microscopies; self-assembled deposition; self-assembly protocol; silica beads; surface plasmon modes; Gold; Gratings; Microscopy; Nanocrystals; Plasmons; Reflection; Silicon compounds; electron microscopy; fluorescence; nanocrystals; self-organization; surface plasmons;
Conference_Titel :
Transparent Optical Networks (ICTON), 2014 16th International Conference on
Conference_Location :
Graz
DOI :
10.1109/ICTON.2014.6876619