People | Locations | Statistics |
---|---|---|
Naji, M. |
| |
Motta, Antonella |
| |
Aletan, Dirar |
| |
Mohamed, Tarek |
| |
Ertürk, Emre |
| |
Taccardi, Nicola |
| |
Kononenko, Denys |
| |
Petrov, R. H. | Madrid |
|
Alshaaer, Mazen | Brussels |
|
Bih, L. |
| |
Casati, R. |
| |
Muller, Hermance |
| |
Kočí, Jan | Prague |
|
Šuljagić, Marija |
| |
Kalteremidou, Kalliopi-Artemi | Brussels |
|
Azam, Siraj |
| |
Ospanova, Alyiya |
| |
Blanpain, Bart |
| |
Ali, M. A. |
| |
Popa, V. |
| |
Rančić, M. |
| |
Ollier, Nadège |
| |
Azevedo, Nuno Monteiro |
| |
Landes, Michael |
| |
Rignanese, Gian-Marco |
|
Grillet, Christian
in Cooperation with on an Cooperation-Score of 37%
Topics
Publications (22/22 displayed)
- 2023Efficient Optimization of High‐Quality Epitaxial Lithium Niobate Thin Films by Chemical Beam Vapor Deposition: Impact of Cationic Stoichiometrycitations
- 2023Efficient Optimization of High‐Quality Epitaxial Lithium Niobate Thin Films by Chemical Beam Vapor Deposition: Impact of Cationic Stoichiometrycitations
- 2019Post processing dispersion trimming for on-chip mid-infrared supercontinuum generation
- 2015Mid-IR integrated photonics for sensing applicationscitations
- 2012Third-harmonic generation in slow-light chalcogenide glass photonic crystal waveguidescitations
- 2011Third-harmonic generation in engineered slow light photonic crystal waveguides in chalcogenide glasses
- 2011Third-Harmonic generation in slow-light chalcogenide glass photonic crystal waveguidescitations
- 2011Third-harmonic generation in slow-light chalcogenide glass photonic crystal waveguidescitations
- 2010Chalcogenide glass photonic crystalscitations
- 2010Photosensitive and thermal nonlinear effects in chalcogenide photonic crystal cavitiescitations
- 2009Photoinduced high-Q cavities in chalcogenide photonic crystals
- 2009High-Q photonic crystal chalcogenide cavities by photosensitive post processing
- 2009High-Q photonic crystal chalcogenide cavities by photosensitive post processing
- 2009Photowritten high-Q cavities in two-dimensional chalcogenide glass photonic crystalscitations
- 2008Chalcogenide glass photonic crystalscitations
- 2008Characterizing photonic crystal waveguides with an expanded k-space evanescent coupling techniquecitations
- 2008Photo-induced cavities in chalcogenide photonic crystals
- 2007Photosensitive post tuning of chalcogenide photonic crystal waveguidescitations
- 2006Characterization and modeling of Fano resonances in chalcogenide photonic crystal membranescitations
- 2006Efficient coupling to chalcogenide glass photonic crystal waveguides via silica optical fiber nanowirescitations
- 2006Characterization and modeling of Fano resonances in chalcogenide glass photonic crystal membranescitations
- 2005Fabrication of photonic crystal membranes in chalcogenide glasses by focused ion beam milling
Places of action
Organizations | Location | People |
---|
document
Post processing dispersion trimming for on-chip mid-infrared supercontinuum generation
Abstract
<p>On-chip mid-infrared (3-20 μm) supercontinuum (SC) generation has potential applications in many different fields such as bio imaging, environmental sensors and security [1]. Recently, the wide transparency window from 3 to 15 μm and CMOS compatibility of germanium, along with the prediction of great nonlinear properties [2-3], have attracted a growing interest toward germanium-based platforms. In particular, silicon-germanium on silicon waveguides have been studied [4-9] and octave spanning SC generation up to 8.5 μm has been demonstrated in this platform [10]. The spectral properties and the coherence of the generated SC strongly depend on the waveguide's dispersion profile and a careful design of the group velocity dispersion is required. However, the actual dispersion of the waveguide produced by fabrication is often different from the target one, as it is sensitive to fabrication inaccuracies, surface contamination and the presence of defects. Post-process tuning mechanisms are therefore of great interest to adjust or correct a posteriori the waveguide dispersion to match the target value. Here, we experimentally show that it is possible to fine tune the dispersion profile a posteriori by adding a chalcogenide cladding layer on top of a highly nonlinear silicon-germanium on silicon waveguide, introducing a simple post processing tool to control the supercontinuum dynamics and its properties.</p>