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集成交钥匙孤子微梳。

Integrated turnkey soliton microcombs.

机构信息

T. J. Watson Laboratory of Applied Physics, California Institute of Technology, Pasadena, CA, USA.

ECE Department, University of California Santa Barbara, Santa Barbara, CA, USA.

出版信息

Nature. 2020 Jun;582(7812):365-369. doi: 10.1038/s41586-020-2358-x. Epub 2020 Jun 17.

Abstract

Optical frequency combs have a wide range of applications in science and technology. An important development for miniature and integrated comb systems is the formation of dissipative Kerr solitons in coherently pumped high-quality-factor optical microresonators. Such soliton microcombs have been applied to spectroscopy, the search for exoplanets, optical frequency synthesis, time keeping and other areas. In addition, the recent integration of microresonators with lasers has revealed the viability of fully chip-based soliton microcombs. However, the operation of microcombs requires complex startup and feedback protocols that necessitate difficult-to-integrate optical and electrical components, and microcombs operating at rates that are compatible with electronic circuits-as is required in nearly all comb systems-have not yet been integrated with pump lasers because of their high power requirements. Here we experimentally demonstrate and theoretically describe a turnkey operation regime for soliton microcombs co-integrated with a pump laser. We show the appearance of an operating point at which solitons are immediately generated by turning the pump laser on, thereby eliminating the need for photonic and electronic control circuitry. These features are combined with high-quality-factor SiN resonators to provide microcombs with repetition frequencies as low as 15 gigahertz that are fully integrated into an industry standard (butterfly) package, thereby offering compelling advantages for high-volume production.

摘要

光学频率梳在科学技术中有广泛的应用。微型化和集成化梳系统的一个重要发展是在相干泵浦的高质量因子光学微谐振器中形成耗散克尔孤子。这种孤子微梳已被应用于光谱学、系外行星搜索、光频合成、守时和其他领域。此外,微谐振器与激光器的最近集成揭示了基于全芯片的孤子微梳的可行性。然而,微梳的运行需要复杂的启动和反馈协议,这些协议需要难以集成的光学和电子元件,并且与电子电路兼容的微梳工作速率(几乎所有梳系统都需要)尚未与泵浦激光器集成,因为它们需要高功率。在这里,我们实验演示并理论描述了与泵浦激光器共同集成的孤子微梳的即用型操作模式。我们展示了一个工作点的出现,即通过打开泵浦激光器立即产生孤子,从而消除了对光子和电子控制电路的需求。这些功能与高质量因子 SiN 谐振器相结合,为微梳提供了低至 15 千兆赫的重复频率,这些微梳完全集成到工业标准(蝴蝶)封装中,从而为大规模生产提供了极具吸引力的优势。

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