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High-finesse Fabry–Perot cavities with bidimensional Si(3)N(4) photonic-crystal slabs

Light scattering by a two-dimensional photonic-crystal slab (PCS) can result in marked interference effects associated with Fano resonances. Such devices offer appealing alternatives to distributed Bragg reflectors and filters for various applications, such as optical wavelength and polarization fil...

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Autores principales: Chen, Xu, Chardin, Clément, Makles, Kevin, Caër, Charles, Chua, Sheon, Braive, Rémy, Robert-Philip, Isabelle, Briant, Tristan, Cohadon, Pierre-François, Heidmann, Antoine, Jacqmin, Thibaut, Deléglise, Samuel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6061889/
https://www.ncbi.nlm.nih.gov/pubmed/30167192
http://dx.doi.org/10.1038/lsa.2016.190
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author Chen, Xu
Chardin, Clément
Makles, Kevin
Caër, Charles
Chua, Sheon
Braive, Rémy
Robert-Philip, Isabelle
Briant, Tristan
Cohadon, Pierre-François
Heidmann, Antoine
Jacqmin, Thibaut
Deléglise, Samuel
author_facet Chen, Xu
Chardin, Clément
Makles, Kevin
Caër, Charles
Chua, Sheon
Braive, Rémy
Robert-Philip, Isabelle
Briant, Tristan
Cohadon, Pierre-François
Heidmann, Antoine
Jacqmin, Thibaut
Deléglise, Samuel
author_sort Chen, Xu
collection PubMed
description Light scattering by a two-dimensional photonic-crystal slab (PCS) can result in marked interference effects associated with Fano resonances. Such devices offer appealing alternatives to distributed Bragg reflectors and filters for various applications, such as optical wavelength and polarization filters, reflectors, semiconductor lasers, photodetectors, bio-sensors and non-linear optical components. Suspended PCS also have natural applications in the field of optomechanics, where the mechanical modes of a suspended slab interact via radiation pressure with the optical field of a high-finesse cavity. The reflectivity and transmission properties of a defect-free suspended PCS around normal incidence can be used to couple out-of-plane mechanical modes to an optical field by integrating it in a free-space cavity. Here we demonstrate the successful implementation of a PCS reflector on a high-tensile stress Si(3)N(4) nanomembrane. We illustrate the physical process underlying the high reflectivity by measuring the photonic-crystal band diagram. Moreover, we introduce a clear theoretical description of the membrane scattering properties in the presence of optical losses. By embedding the PCS inside a high-finesse cavity, we fully characterize its optical properties. The spectrally, angular- and polarization-resolved measurements demonstrate the wide tunability of the membrane’s reflectivity, from nearly 0 to 99.9470±0.0025%, and show that material absorption is not the main source of optical loss. Moreover, the cavity storage time demonstrated in this work exceeds the mechanical period of low-order mechanical drum modes. This so-called resolved-sideband condition is a prerequisite to achieve quantum control of the mechanical resonator with light.
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spelling pubmed-60618892018-08-30 High-finesse Fabry–Perot cavities with bidimensional Si(3)N(4) photonic-crystal slabs Chen, Xu Chardin, Clément Makles, Kevin Caër, Charles Chua, Sheon Braive, Rémy Robert-Philip, Isabelle Briant, Tristan Cohadon, Pierre-François Heidmann, Antoine Jacqmin, Thibaut Deléglise, Samuel Light Sci Appl Original Article Light scattering by a two-dimensional photonic-crystal slab (PCS) can result in marked interference effects associated with Fano resonances. Such devices offer appealing alternatives to distributed Bragg reflectors and filters for various applications, such as optical wavelength and polarization filters, reflectors, semiconductor lasers, photodetectors, bio-sensors and non-linear optical components. Suspended PCS also have natural applications in the field of optomechanics, where the mechanical modes of a suspended slab interact via radiation pressure with the optical field of a high-finesse cavity. The reflectivity and transmission properties of a defect-free suspended PCS around normal incidence can be used to couple out-of-plane mechanical modes to an optical field by integrating it in a free-space cavity. Here we demonstrate the successful implementation of a PCS reflector on a high-tensile stress Si(3)N(4) nanomembrane. We illustrate the physical process underlying the high reflectivity by measuring the photonic-crystal band diagram. Moreover, we introduce a clear theoretical description of the membrane scattering properties in the presence of optical losses. By embedding the PCS inside a high-finesse cavity, we fully characterize its optical properties. The spectrally, angular- and polarization-resolved measurements demonstrate the wide tunability of the membrane’s reflectivity, from nearly 0 to 99.9470±0.0025%, and show that material absorption is not the main source of optical loss. Moreover, the cavity storage time demonstrated in this work exceeds the mechanical period of low-order mechanical drum modes. This so-called resolved-sideband condition is a prerequisite to achieve quantum control of the mechanical resonator with light. Nature Publishing Group 2017-01-13 /pmc/articles/PMC6061889/ /pubmed/30167192 http://dx.doi.org/10.1038/lsa.2016.190 Text en Copyright © 2017 The Author(s) http://creativecommons.org/licenses/by-nc-sa/4.0/ This work is licensed under a Creative Commons Attribution-NonCommercial-ShareAlike 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by-nc-sa/4.0/
spellingShingle Original Article
Chen, Xu
Chardin, Clément
Makles, Kevin
Caër, Charles
Chua, Sheon
Braive, Rémy
Robert-Philip, Isabelle
Briant, Tristan
Cohadon, Pierre-François
Heidmann, Antoine
Jacqmin, Thibaut
Deléglise, Samuel
High-finesse Fabry–Perot cavities with bidimensional Si(3)N(4) photonic-crystal slabs
title High-finesse Fabry–Perot cavities with bidimensional Si(3)N(4) photonic-crystal slabs
title_full High-finesse Fabry–Perot cavities with bidimensional Si(3)N(4) photonic-crystal slabs
title_fullStr High-finesse Fabry–Perot cavities with bidimensional Si(3)N(4) photonic-crystal slabs
title_full_unstemmed High-finesse Fabry–Perot cavities with bidimensional Si(3)N(4) photonic-crystal slabs
title_short High-finesse Fabry–Perot cavities with bidimensional Si(3)N(4) photonic-crystal slabs
title_sort high-finesse fabry–perot cavities with bidimensional si(3)n(4) photonic-crystal slabs
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6061889/
https://www.ncbi.nlm.nih.gov/pubmed/30167192
http://dx.doi.org/10.1038/lsa.2016.190
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