光注入太赫兹环量子级联激光器中的频率梳

IF 5.4 1区 物理与天体物理 Q1 OPTICS APL Photonics Pub Date : 2023-12-13 DOI:10.1063/5.0173912
Md Istiak Khan, Zhenyang Xiao, Sadhvikas J. Addamane, David Burghoff
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引用次数: 0

摘要

量子级联激光器(qcl)已经成为在中红外和太赫兹波长产生芯片级频率梳的有希望的候选者。在这项工作中,我们演示了使用分布反馈(DFB)激光器注入光在环形太赫兹qcl中形成频率梳状。DFB的设计频率选择与环形腔的模式相匹配(接近3.3太赫兹),DFB的光通过总线波导注入环形QCL。通过控制光注入的功率和频率,我们证明了在环形腔中可以选择性地形成和控制梳状结构。数值模拟表明,这种梳状结构主要是调频的,注入有助于触发梳状结构的形成。我们还表明,环可以用作滤波器来控制DFB QCL的输出,潜在地对太赫兹光子集成电路感兴趣。我们的工作表明,波导耦合器是一种引人注目的方法,用于从环形太赫兹梳中注入和提取辐射,并为在太赫兹中产生新的梳态提供了令人兴奋的可能性,例如调频波、孤子等。
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Frequency combs in optically injected terahertz ring quantum cascade lasers
Quantum cascade lasers (QCLs) have emerged as promising candidates for generating chip-scale frequency combs in mid-infrared and terahertz wavelengths. In this work, we demonstrate frequency comb formation in ring terahertz QCLs using the injection of light from a distributed feedback (DFB) laser. The DFB design frequency is chosen to match the modes of the ring cavity (near 3.3 THz), and light from the DFB is injected into the ring QCL via a bus waveguide. By controlling the power and frequency of the optical injection, we show that combs can be selectively formed and controlled in the ring cavity. Numerical modeling suggests that this comb is primarily frequency-modulated in character, with the injection serving to trigger comb formation. We also show that the ring can be used as a filter to control the output of the DFB QCL, potentially being of interest in terahertz photonic integrated circuits. Our work demonstrates that waveguide couplers are a compelling approach for injecting and extracting radiation from ring terahertz combs and offer exciting possibilities for the generation of new comb states in terahertz, such as frequency-modulated waves, solitons, and more.
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来源期刊
APL Photonics
APL Photonics Physics and Astronomy-Atomic and Molecular Physics, and Optics
CiteScore
10.30
自引率
3.60%
发文量
107
审稿时长
19 weeks
期刊介绍: APL Photonics is the new dedicated home for open access multidisciplinary research from and for the photonics community. The journal publishes fundamental and applied results that significantly advance the knowledge in photonics across physics, chemistry, biology and materials science.
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