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Unité de recherche
INNOSUISSE
Numéro de projet
8714.2;5 PFNM-NM
Titre du projet
Long wavelength VCSELs for advanced spectroscopic gas detection systems
Titre du projet anglais
Long wavelength VCSELs for advanced spectroscopic gas detection systems

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Description succincte
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Résumé des résultats (Abstract)
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Textes saisis


CatégorieTexte
Description succincte
(Anglais)
Long wavelength VCSELs for advanced spectroscopic gas detection systems
Description succincte
(Français)
Long wavelength VCSELs for advanced spectroscopic gas detection systems
Résumé des résultats (Abstract)
(Anglais)
The project will develop long wavelength (1200-2300nm) vertical cavity surface emitting lasers (VCSELs) with precisely controlled emission wavelength (± 1nm) for gas sensing applications. This will be accomplished using the localized wafer fusion technology developed by BeamExpress and EPFL, which allows nanometer-scale engineering of the VCSEL optical cavity and consequently nm precision in emission wavelength. The developed VCSELs will be employed in demonstrating gas sensing systems for selected molecules, namely, ammonia (1512nm absorption wavelength) and combustible gases (1686nm absorption wavelength), using the novel optical detection method developed at IR Microsystems.
Résumé des résultats (Abstract)
(Français)
The project will develop long wavelength (1200-2300nm) vertical cavity surface emitting lasers (VCSELs) with precisely controlled emission wavelength (± 1nm) for gas sensing applications. This will be accomplished using the localized wafer fusion technology developed by BeamExpress and EPFL, which allows nanometer-scale engineering of the VCSEL optical cavity and consequently nm precision in emission wavelength. The developed VCSELs will be employed in demonstrating gas sensing systems for selected molecules, namely, ammonia (1512nm absorption wavelength) and combustible gases (1686nm absorption wavelength), using the novel optical detection method developed at IR Microsystems.