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双频激光器,包括用于对分布反馈激光二极管进行自注入锁定和布里渊激光振荡的单光纤环形腔。

Dual-frequency laser comprising a single fiber ring cavity for self-injection locking of DFB laser diode and Brillouin lasing.

作者信息

Spirin Vasily V, Bueno Escobedo José L, Korobko Dmitry A, Mégret Patrice, Fotiadi Andrei A

出版信息

Opt Express. 2020 Dec 7;28(25):37322-37333. doi: 10.1364/OE.406040.

Abstract

Low-noise lasers are a powerful tool in precision spectroscopy, displacement measurements, and development of advanced optical atomic clocks. While all applications benefit from lower frequency noise and robust design, some of them also require lasing at two frequencies. Here, we introduce a simple dual-frequency laser leveraging a ring fiber cavity exploited both for self-injection locking of a standard semiconductor distributed feedback (DFB) laser and for generation of Stokes light via stimulated Brillouin scattering. In contrast to the previous laser configurations, the system is supplied by a low-bandwidth active optoelectronic feedback. Importantly, continuous operation of two mutually locked frequencies is provided by self-injection locking, while the active feedback loop is used just to support this regime. The fiber configuration reduces the natural Lorentzian linewidth of light emitted by the laser at pump and Stokes frequencies down to 270 Hz and 110 Hz, respectively, and features a stable 300-Hz-width RF spectrum recorded with beating of two laser outputs. Translating the proposed laser design to integrated photonics will dramatically reduce cost and footprint for many laser applications such as ultra-high capacity fiber and data center networks, atomic clocks, and microwave photonics.

摘要

低噪声激光器是精密光谱学、位移测量以及先进光学原子钟研发中的一项强大工具。虽然所有应用都受益于更低的频率噪声和坚固的设计,但其中一些应用还需要双频激光输出。在此,我们介绍一种简单的双频激光器,它利用环形光纤腔,既用于标准半导体分布反馈(DFB)激光器的自注入锁定,又用于通过受激布里渊散射产生斯托克斯光。与先前的激光配置不同,该系统由低带宽有源光电反馈供电。重要的是,两个相互锁定频率的连续运行由自注入锁定提供,而有源反馈回路仅用于支持这种工作模式。光纤配置将激光器在泵浦频率和斯托克斯频率下发射光的自然洛伦兹线宽分别降低至270 Hz和110 Hz,并具有通过两个激光输出拍频记录的稳定300 Hz宽度的射频频谱。将所提出的激光设计转化为集成光子学将显著降低许多激光应用的成本和占地面积,如超高容量光纤和数据中心网络、原子钟以及微波光子学。

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