Mode locking, the self-starting synchronous oscillation of electromagnetic modes in a laser cavity, is the primary way to generate ultrashort light pulses. In random lasers, without a cavity, mode-locking, the nonlinear coupling amongst low spatially coherent random modes, can be activated via optical pumping, even without the emission of short pulses. Here, by exploiting the combination of the inherently giant third-order chi((3)) nonlinearity of semiconductor heterostructure lasers and the nonlinear properties of graphene, the authors demonstrate mode-locking in surface-emitting electrically pumped random quantum cascade lasers at terahertz frequencies. This is achieved by either lithographically patterning a multilayer graphene film to define a surface random pattern of light scatterers, or by coupling on chip a saturable absorber graphene reflector. Intermode beatnote mapping unveils self-induced phase-coherence between naturally incoherent random modes. Self-mixing intermode spectroscopy reveals phase-locked random modes. This is an important milestone in the physics of disordered systems. It paves the way to the development of a new generation of miniaturized, electrically pumped mode-locked light sources, ideal for broadband spectroscopy, multicolor speckle-free imaging applications, and reservoir quantum computing.

Self-Induced Mode-Locking in Electrically Pumped Far-Infrared Random Lasers

Di Gaspare, Alessandra;Pistore, Valentino;Riccardi, Elisa;Pogna, Eva;Vitiello, Miriam S.
2023

Abstract

Mode locking, the self-starting synchronous oscillation of electromagnetic modes in a laser cavity, is the primary way to generate ultrashort light pulses. In random lasers, without a cavity, mode-locking, the nonlinear coupling amongst low spatially coherent random modes, can be activated via optical pumping, even without the emission of short pulses. Here, by exploiting the combination of the inherently giant third-order chi((3)) nonlinearity of semiconductor heterostructure lasers and the nonlinear properties of graphene, the authors demonstrate mode-locking in surface-emitting electrically pumped random quantum cascade lasers at terahertz frequencies. This is achieved by either lithographically patterning a multilayer graphene film to define a surface random pattern of light scatterers, or by coupling on chip a saturable absorber graphene reflector. Intermode beatnote mapping unveils self-induced phase-coherence between naturally incoherent random modes. Self-mixing intermode spectroscopy reveals phase-locked random modes. This is an important milestone in the physics of disordered systems. It paves the way to the development of a new generation of miniaturized, electrically pumped mode-locked light sources, ideal for broadband spectroscopy, multicolor speckle-free imaging applications, and reservoir quantum computing.
2023
Istituto Nanoscienze - NANO
Inglese
2206824- 1
2206824- 11
11
https://onlinelibrary.wiley.com/doi/epdf/10.1002/advs.202206824
Sì, ma tipo non specificato
graphene
random lasers
terahertz
Internazionale
11
info:eu-repo/semantics/article
262
Di Gaspare, Alessandra; Pistore, Valentino; Riccardi, Elisa; Pogna, Eva; Beere, Harvey E.; Ritchie, David A.; Li, Lianhe; Davies, Alexander Giles; Lin...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
File in questo prodotto:
File Dimensione Formato  
prod_484281-doc_200060.pdf

accesso aperto

Descrizione: Published paper
Tipologia: Versione Editoriale (PDF)
Licenza: Creative commons
Dimensione 3.88 MB
Formato Adobe PDF
3.88 MB Adobe PDF Visualizza/Apri

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/462392
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 9
  • ???jsp.display-item.citation.isi??? 8
social impact