The ability to engineer quantum-cascade-lasers (QCLs) with ultrabroad gain spectra, and with a full compensation of the group velocity dispersion, at terahertz (THz) frequencies, is key for devising monolithic and miniaturized optical frequency-comb-synthesizers (FCSs) in the far-infrared. In THz QCLs four-wave mixing, driven by intrinsic third-order susceptibility of the intersubband gain medium, self-locks the optical modes in phase, allowing stable comb operation, albeit over a restricted dynamic range (~20% of the laser operational range). Here, we engineer miniaturized THz FCSs, comprising a heterogeneous THz QCL, integrated with a tightly coupled, on-chip, solution-processed, graphene saturable-absorber reflector that preserves phase-coherence between lasing modes, even when four-wave mixing no longer provides dispersion compensation. This enables a high-power (8 mW) FCS with over 90 optical modes, through 55% of the laser operational range. We also achieve stable injection-locking, paving the way to a number of key applications, including high-precision tunable broadband-spectroscopy and quantum-metrology.

Terahertz Frequency Combs Exploiting an On-Chip, Solution-Processed, Graphene-Quantum Cascade Laser Coupled-Cavity

Mezzapesa FP;Garrasi K;Schmidt J;Salemi L;Pistore V;Vitiello MS
2020

Abstract

The ability to engineer quantum-cascade-lasers (QCLs) with ultrabroad gain spectra, and with a full compensation of the group velocity dispersion, at terahertz (THz) frequencies, is key for devising monolithic and miniaturized optical frequency-comb-synthesizers (FCSs) in the far-infrared. In THz QCLs four-wave mixing, driven by intrinsic third-order susceptibility of the intersubband gain medium, self-locks the optical modes in phase, allowing stable comb operation, albeit over a restricted dynamic range (~20% of the laser operational range). Here, we engineer miniaturized THz FCSs, comprising a heterogeneous THz QCL, integrated with a tightly coupled, on-chip, solution-processed, graphene saturable-absorber reflector that preserves phase-coherence between lasing modes, even when four-wave mixing no longer provides dispersion compensation. This enables a high-power (8 mW) FCS with over 90 optical modes, through 55% of the laser operational range. We also achieve stable injection-locking, paving the way to a number of key applications, including high-precision tunable broadband-spectroscopy and quantum-metrology.
2020
Istituto Nanoscienze - NANO
Inglese
http://www.scopus.com/record/display.url?eid=2-s2.0-85097801960&origin=inward
Sì, ma tipo non specificato
Nanoengineered devices
Saturable absorbers
heterostructure semiconductor lasers
frequency combs
Internazionale
14
info:eu-repo/semantics/article
262
Mezzapesa, Fp; Garrasi, K; Schmidt, J; Salemi, L; Pistore, V; L, Li; Davies, Ag; Linfield, Eh; Riesch, M; Jirauschek, C; Carey, T; Torrisi, F; Ferrari...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 2
   GrapheneCore2
   European Commission
   Horizon 2020 Framework Programme
   785219
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/425519
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