An electrically switchable graphene terahertz (THz) modulator with a tunable-by-design optical bandwidth is presented and it is exploited to compensate the cavity dispersion of a quantum cascade laser (QCL). Electrostatic gating is achieved by a metal grating used as a gate electrode, with an HfO2/AlOx gate dielectric on top. This is patterned on a polyimide layer, which acts as a quarter wave resonance cavity, coupled with an Au reflector underneath. The authors achieve 90% modulation depth of the intensity, combined with a 20 kHz electrical bandwidth in the 1.9-2.7 THz range. The modulator is then integrated with a multimode THz QCL. By adjusting the modulator operational bandwidth, the authors demonstrate that the graphene modulator can partially compensate the QCL cavity dispersion, resulting in an integrated laser behaving as a stable frequency comb over 35% of the operational range, with 98 equidistant optical modes and a spectral coverage similar to 1.2 THz. This paves the way for applications in the terahertz, such as tunable transformation-optics devices, active photonic components, adaptive and quantum optics, and metrological tools for spectroscopy at THz frequencies.

Tunable, Grating-Gated, Graphene-On-Polyimide Terahertz Modulators

Di Gaspare A.;Pogna E.;Salemi L.;Di Franco C.;Scamarcio G.;Vitiello M. S.
2021

Abstract

An electrically switchable graphene terahertz (THz) modulator with a tunable-by-design optical bandwidth is presented and it is exploited to compensate the cavity dispersion of a quantum cascade laser (QCL). Electrostatic gating is achieved by a metal grating used as a gate electrode, with an HfO2/AlOx gate dielectric on top. This is patterned on a polyimide layer, which acts as a quarter wave resonance cavity, coupled with an Au reflector underneath. The authors achieve 90% modulation depth of the intensity, combined with a 20 kHz electrical bandwidth in the 1.9-2.7 THz range. The modulator is then integrated with a multimode THz QCL. By adjusting the modulator operational bandwidth, the authors demonstrate that the graphene modulator can partially compensate the QCL cavity dispersion, resulting in an integrated laser behaving as a stable frequency comb over 35% of the operational range, with 98 equidistant optical modes and a spectral coverage similar to 1.2 THz. This paves the way for applications in the terahertz, such as tunable transformation-optics devices, active photonic components, adaptive and quantum optics, and metrological tools for spectroscopy at THz frequencies.
2021
Istituto di fotonica e nanotecnologie - IFN
Istituto Nanoscienze - NANO
Inglese
31
10
2008039-1
2008039-11
11
https://onlinelibrary.wiley.com/doi/10.1002/adfm.202008039
Sì, ma tipo non specificato
graphene
modulators
polyimide waveguides
Internazionale
13
info:eu-repo/semantics/article
262
Di Gaspare, A.; Pogna, E.; Salemi, L.; Balci, O.; Cadore, A. R.; Shinde, S. M.; Li, L.; Di Franco, C.; Davies, A. G.; Linfiel, E. H.; Ferrari, A. C.; ...espandi
01 Contributo su Rivista::01.01 Articolo in rivista
open
   Ultra-Short Pulse laser Resonators IN the Terahertz
   SPRINT
   European Commission
   Horizon 2020 Framework Programme
   681379

   Graphene Flagship Core Project 3
   GrapheneCore3
   European Commission
   Horizon 2020 Framework Programme
   881603
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/425517
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