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Graphene waveguide-integrated thermal infrared emitter

Authors :
Negm, N.
Zayouna, S.
Parhizkar, S.
Lin, Pen-Sheng
Huang, P. -H
Suckow, S.
Schroder, S.
De Luca, E.
Briano, F. O.
Quellmalz, Arne
Niklaus, Frank
Gylfason, Kristinn
Lemme, M. C.
Negm, N.
Zayouna, S.
Parhizkar, S.
Lin, Pen-Sheng
Huang, P. -H
Suckow, S.
Schroder, S.
De Luca, E.
Briano, F. O.
Quellmalz, Arne
Niklaus, Frank
Gylfason, Kristinn
Lemme, M. C.
Publication Year :
2022

Abstract

Low-cost and easily integrable mid-infrared (MIR) sources are highly desired for photonic integrated circuits. Thermal incandescent MIR sources are widely used. They work by Joule heating, i.e. an electrical current through the emitter causes thermal emission according to Planck's law. Their simple design with only two contact pads makes them integrable with typical optoelectronic components in high-volume production flows. Graphene's emissivity is comparable to common metallic emitters. In contrast to the latter, graphene is transparent at MIR wavelengths, which enables placing large area graphene emitters in the evanescent field of integrated waveguides [1]-[2]. This enhances emission by near-field coupling directly into the waveguide mode, avoiding the mode-mismatch to free space. Here, we present the first experimental demonstration of a graphene emitter placed directly on a photonic waveguide, hence emitting directly into the waveguide mode.<br />QC 20230522

Details

Database :
OAIster
Notes :
English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1400069913
Document Type :
Electronic Resource
Full Text :
https://doi.org/10.1109.DRC55272.2022.9855779