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首页> 外文期刊>Physical review letters >Walk-Off-Induced Modulation Instability, Temporal Pattern Formation, and Frequency Comb Generation in Cavity-Enhanced Second-Harmonic Generation
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Walk-Off-Induced Modulation Instability, Temporal Pattern Formation, and Frequency Comb Generation in Cavity-Enhanced Second-Harmonic Generation

机译:腔增强二次谐波产生中的离散感应调制不稳定性,时间模式形成和频率梳产生

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摘要

We derive a time-domain mean-field equation to model the full temporal and spectral dynamics of light in singly resonant cavity-enhanced second-harmonic generation systems. We show that the temporal walk-off between the fundamental and the second-harmonic fields plays a decisive role under realistic conditions, giving rise to rich, previously unidentified nonlinear behavior. Through linear stability analysis and numerical simulations, we discover a new kind of quadratic modulation instability which leads to the formation of optical frequency combs and associated time-domain dissipative structures. Our numerical simulations show excellent agreement with recent experimental observations of frequency combs in quadratic nonlinear media [Phys. Rev. A 91, 063839 (2015)]. Thus, in addition to unveiling a new, experimentally accessible regime of nonlinear dynamics, our work enables predictive modeling of frequency comb generation in cavity-enhanced second-harmonic generation systems. We expect our findings to have wide impact on the study of temporal and spectral dynamics in a diverse range of dispersive, quadratically nonlinear resonators.
机译:我们导出了一个时域平均场方程,以建模单共振腔增强的第二谐波产生系统中光的全部时间和光谱动力学。我们表明,在实际条件下,基波和二次谐波场之间的时间偏移起着决定性的作用,从而产生了丰富的,以前无法识别的非线性行为。通过线性稳定性分析和数值模拟,我们发现了一种新型的二次调制不稳定性,它导致了光频率梳和相关的时域耗散结构的形成。我们的数值模拟与二次非线性介质中频率梳的最新实验观察结果非常吻合。 A 91,063839(2015)。因此,除了揭示一种新的,可通过实验获得的非线性动力学机制之外,我们的工作还可以对腔增强的二次谐波产生系统中的频率梳产生进行预测建模。我们希望我们的发现对各种色散,二次非线性谐振器中的时间和频谱动力学的研究产生广泛的影响。

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  • 来源
    《Physical review letters》 |2016年第3期|033901.1-033901.6|共6页
  • 作者单位

    Univ Auckland, Dept Phys, Dodd Walls Ctr Photon & Quantum Technol, Auckland 1142, New Zealand;

    Chalmers, Dept Appl Phys, SE-41296 Gothenburg, Sweden|Univ Brescia, Dipartimento Ingn Informaz, Via Branze 38, I-25123 Brescia, Italy;

    CNR, INO, Via Campi Flegrei 34, I-80078 Pozzuoli, Italy;

    CNR, INO, Via Campi Flegrei 34, I-80078 Pozzuoli, Italy;

    Univ Auckland, Dept Phys, Dodd Walls Ctr Photon & Quantum Technol, Auckland 1142, New Zealand;

    Univ Brescia, Dipartimento Ingn Informaz, Via Branze 38, I-25123 Brescia, Italy|CNR, INO, Via Campi Flegrei 34, I-80078 Pozzuoli, Italy;

    Univ Auckland, Dept Phys, Dodd Walls Ctr Photon & Quantum Technol, Auckland 1142, New Zealand;

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