论文标题

光子晶体Fabry-Perot微孔子中的孤子脉冲

Soliton Pulses in Photonic Crystal Fabry-Perot Microresonators

论文作者

Wildi, Thibault, Gaafar, Mahmoud A., Voumard, Thibault, Ludwig, Markus, Herr, Tobias

论文摘要

高Q微孔子中的耗散kerr孤子(DKSS)可实现传感,通信和信号处理的应用。到目前为止,由连续波(CW)激光器驱动的DKS仅在环形谐振器中产生。 Fabry-Perot谐振器与环类型的谐振器互补,可以实现分散工程的新方法,以应对DKS技术的关键挑战。但是,尚未实现由CW驱动的Fabry-Perot微孔子中的DKS生成。在这里,我们首次在高Q Fabry-Perrot微孔子中演示了CW驱动的DKS。在晶圆级的过程中制造,两个光子晶体反射器中的波导形式形成了芯片集成的谐振器,并定义了其分散体。 400万的固有Q因子是传播损失有限的。原则上,可以定制光子晶体反射器的每个单元格,开为传统分散工程外开放的设计空间,并有可能将DKS的未来扩展到可见和其他目前无法接近的波长。除了DKS之外,这还为微孔孔子中的滤波器脉冲形成,工程光谱和宽带相匹配创造了机会。

Dissipative Kerr solitons (DKSs) in high-Q microresonators enable applications in sensing, communication, and signal processing. Until now, DKSs driven by continuous-wave (CW) lasers are exclusively generated in ring-type resonators. Complementary to ring-type resonators, Fabry-Perot resonators could enable new approaches to dispersion engineering, addressing a key challenge of DKS technology. However, DKS generation in a CW-driven Fabry-Perot microresonator has not yet been achieved. Here, we demonstrate for the first time CW-driven DKSs in a high-Q Fabry-Perot microresonator. Fabricated in a wafer-level process, two photonic crystal reflectors in a waveguide form the chip-integrated resonator and define its dispersion. The intrinsic Q-factor of 4 million is propagation-loss limited. In principle, each cell of the photonic crystal reflector can be tailored, opening a design space beyond traditional dispersion engineering, with potential for future extension of DKSs to visible and other currently inaccessible wavelengths. Beyond DKSs, this creates opportunities for filter-driven pulse formation, engineered spectra and broadband phase-matching in microresonators.

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