论文标题
在二氧化硅微孔子中,刺激的拉曼散射对深色孤子产生的影响
Impact of Stimulated Raman Scattering on Dark Soliton Generation in a Silica Microresonator
论文作者
论文摘要
在任意波长下生成相干的光学频率梳对于诸如光谱和光学通信等字段很重要。暗孤子是正常分散微孔子中光频率梳子的连贯状态,可以扩展工作波长,并通过模式耦合而激发。由于它们的高转换效率和确定性的激发,不需要分散工程,因此在过去十年中对它们进行了调查。虽然已经对深色孤子的存在和动力学进行了广泛的研究,但在近红外波长下存在强拉曼相互作用的情况下,对模态相互作用的需求较少。在这里,对二氧化硅微孔子中的参数和拉曼增益进行分析,表明参数增益可以通过模态相互作用引起的额外频率创建,并且超过了拉曼增益。使用基于Lugiato-Lefever方程的数值模拟研究了参数和刺激的拉曼散射过程的更复杂的相互作用动力学。发现令人兴奋的黑暗孤子不仅需要适当的模态耦合,还需要一系列泵功能。在给定的模态耦合条件下,分析了深色孤子的存在范围,这是泵功率的函数。我们预计这些结果将使需要具有高效率和可选波长的光学频率梳子有益于具有强大拉曼增益的材料。
Generating a coherent optical frequency comb at an arbitrary wavelength is important for fields such as spectroscopy and optical communications. Dark solitons which are coherent states of optical frequency combs in normal dispersion microresonators can extend the operating wavelength and be excited via intermodal coupling. They have been investigated over the last decade due to their high conversion efficiency and deterministic excitation with no need for dispersion engineering. While the existence and dynamics of dark solitons has been examined extensively, requirements on the modal interaction for accessing the soliton state in the presence of a strong Raman interaction at near-IR wavelengths has been less explored. Here, analysis on the parametric and Raman gain in a silica microresonator is performed, revealing that parametric gain can be created by an additional frequency due to modal interaction and exceed the Raman gain. More complex interaction dynamics of the parametric and stimulated Raman scattering process is studied using numerical simulations based on the Lugiato-Lefever equation. It is found that exciting a dark soliton requires not only appropriate modal coupling but also a range of pump powers. The existence range of the dark soliton is analyzed as a function of pump power and detuning for given modal coupling conditions. We anticipate these results will benefit fields requiring optical frequency combs with high efficiency and selectable wavelength in a material with a strong Raman gain.