Broadband quantum-dot frequency-modulated comb laser

Fuente: arXiv
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Autori principali: Dong, Bozhang, Dumont, Mario, Terra, Osama, Wang, Heming, Netherton, Andrew, Bowers, John E.
Natura: Preprint
Pubblicazione: 2023
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author Dong, Bozhang
Dumont, Mario
Terra, Osama
Wang, Heming
Netherton, Andrew
Bowers, John E.
author_facet Dong, Bozhang
Dumont, Mario
Terra, Osama
Wang, Heming
Netherton, Andrew
Bowers, John E.
contents Frequency-modulated (FM) laser combs, which offer a periodic quasi-continuous-wave output and a flat-topped optical spectrum, are emerging as a promising solution for wavelength-division multiplexing applications, precision metrology, and ultrafast optical ranging. The generation of FM combs relies on spatial hole burning, group velocity dispersion (GVD), Kerr nonlinearity, and four-wave mixing (FWM). While FM combs have been widely observed in quantum cascade Fabry-Perot (FP) lasers, the requirement for a low-dispersion FP cavity can be a challenge in platforms where the waveguide dispersion is mainly determined by the material. Here we report a 60 GHz quantum-dot (QD) mode-locked laser in which both the amplitude-modulated (AM) and the FM comb can be generated independently. The high FWM efficiency of -5 dB allows the QD laser to generate an FM comb efficiently. We also demonstrate that the Kerr nonlinearity can be practically engineered to improve the FM comb bandwidth without the need for GVD engineering. The maximum 3-dB bandwidth that our QD platform can deliver is as large as 2.2 THz. This study gives novel insights into the improvement of FM combs and paves the way for small-footprint, electrically-pumped, and energy-efficient frequency combs for silicon photonic integrated circuits (PICs).
format Preprint
id arxiv_https___arxiv_org_abs_2306_15125
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Broadband quantum-dot frequency-modulated comb laser
Dong, Bozhang
Dumont, Mario
Terra, Osama
Wang, Heming
Netherton, Andrew
Bowers, John E.
Optics
Applied Physics
Frequency-modulated (FM) laser combs, which offer a periodic quasi-continuous-wave output and a flat-topped optical spectrum, are emerging as a promising solution for wavelength-division multiplexing applications, precision metrology, and ultrafast optical ranging. The generation of FM combs relies on spatial hole burning, group velocity dispersion (GVD), Kerr nonlinearity, and four-wave mixing (FWM). While FM combs have been widely observed in quantum cascade Fabry-Perot (FP) lasers, the requirement for a low-dispersion FP cavity can be a challenge in platforms where the waveguide dispersion is mainly determined by the material. Here we report a 60 GHz quantum-dot (QD) mode-locked laser in which both the amplitude-modulated (AM) and the FM comb can be generated independently. The high FWM efficiency of -5 dB allows the QD laser to generate an FM comb efficiently. We also demonstrate that the Kerr nonlinearity can be practically engineered to improve the FM comb bandwidth without the need for GVD engineering. The maximum 3-dB bandwidth that our QD platform can deliver is as large as 2.2 THz. This study gives novel insights into the improvement of FM combs and paves the way for small-footprint, electrically-pumped, and energy-efficient frequency combs for silicon photonic integrated circuits (PICs).
title Broadband quantum-dot frequency-modulated comb laser
topic Optics
Applied Physics
url https://arxiv.org/abs/2306.15125