论文标题

四边形非线性谐振器中的光学频率梳子

Optical frequency combs in quadratically nonlinear resonators

论文作者

Ricciardi, I., Mosca, S., Parisi, M., Leo, F., Hansson, T., Erkintalo, M., Maddaloni, P., De Natale, P., Wabnitz, S., De Rosa, M.

论文摘要

光学频率梳子是过去几十年中最引人注目的发明之一。最初被认为是由模式锁定激光器发出的短脉冲列车的光谱对应物,随后还通过三阶参数过程在连续泵送的微孔子中生成了频率梳。最近,在连续的波激光泵式谐振器中已证明了光频梳的直接生成,内部具有二阶非线性介质。在这里,我们简要介绍了这种二次梳子和基础其形成的物理机制。我们主要回顾了有关此类二次频率梳形成和动态的最新实验和理论工作。我们在实验中证明了两种配置的梳子生成:第二次谐波生成的腔,其中围绕泵频率及其第二个谐波生成梳子,以及一个退化的光学参数振荡器,在其中围绕泵频率及其亚谐波生成梳子。实验通过彻底的理论分析支持,旨在建模频率和时域的二次梳子的动力学,从而为这类新型的光频梳合成器的物理学提供了有用的见解。二次梳子建立了具有独特特征的新型有效频率梳合成器,可以直接访问新的光谱区域并刺激新型应用。

Optical frequency combs are one of the most remarkable inventions of the last decades. Originally conceived as the spectral counterpart of the train of short pulses emitted by mode-locked lasers, frequency combs have also been subsequently generated in continuously pumped microresonators, through third-order parametric processes. Quite recently, direct generation of optical frequency combs has been demonstrated in continuous-wave laser-pumped optical resonators with a second-order nonlinear medium inside. Here, we presents a concise introduction to such quadratic combs and the physical mechanism that underlies their formation. We mainly review our recent experimental and theoretical work on formation and dynamics of such quadratic frequency combs. We experimentally demonstrated comb generation in two configurations: a cavity for second harmonic generation, where combs are generated both around the pump frequency and its second harmonic, and a degenerate optical parametric oscillator, where combs are generated around the pump frequency and its sub-harmonic. The experiments have been supported by a thorough theoretical analysis, aimed at modelling the dynamics of quadratic combs, both in frequency and time domains, providing useful insights into the physics of this new class of optical frequency comb synthesizers. Quadratic combs establish a new class of efficient frequency comb synthesizers, with unique features, which could enable straightforward access to new spectral regions and stimulate novel applications.

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