基于氮化硅微腔2 μm波段孤子光梳研究
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1.深圳大学,物理与光电工程学院,深圳市激光工程重点实验室;2.西南大学物理科学与技术学院;3.深圳大学,机电与控制工程学院,深圳大学半导体制造研究院;4.国防科技大学理学院

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国家自然科学基金项目,深圳市科技计划项目


Characterization of 2 μm band soliton optical comb based on silicon nitride microcavity
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Affiliation:

1.Shenzhen Key Laboratory of Laser Engineering, Shenzhen University;2.School of Physical Science and Technology, Southwest University;3.Institute of Semiconductor Manufacturing Research, College of Mechatronics and Control Engineering;4.College of Science National University of Defense Technology

Fund Project:

National Natural Science Foundation of China,Shenzhen Science and Technology Program

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    摘要:

    研究了氮化硅微腔在2 μm波段的光学频率梳产生。通过几何设计对氮化硅波导进行色散调控,选取合适的总线波导尺寸,从热吸收理论出发,讨论氮化硅微腔不同调制频率下的热折射噪声。以非线性薛定谔方程为基础模型,研究不同色散作用下的腔体演变过程。数值结果表明氮化硅在2 μm波段能够更清晰的观察系统的滞后状态转变,即系统向稳定域转变过程的弛豫振荡现象,同时在高阶色散的作用下,腔体能够更快的向稳态孤子转变,这为研究呼吸孤子提供了方案。

    Abstract:

    The optical frequency combs(OFCs) generation of silicon nitride microcavities in the 2 μm band is investigated. Dispersion modulation of silicon nitride waveguides is carried out by geometrical design, appropriate bus waveguide dimensions are selected, and the thermal refraction noise of silicon nitride microcavities at different modulation frequencies is discussed from the thermal absorption theory. The nonlinear Schr?dinger equation is used as the basic model to study the evolution of the cavity under different dispersion effects. The numerical results show that silicon nitride is able to observe the hysteretic state transition of the system, i.e., the relaxation oscillation phenomenon during the transition of the system to the stable domain, more clearly in the 2 μm band, and at the same time, the cavity is able to transition to the steady state soliton faster under the action of the higher-order dispersion, which provides a scheme to study the respiratory soliton.

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  • 收稿日期:2023-10-08
  • 最后修改日期:2023-10-25
  • 录用日期:2023-11-03
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