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1.5μm 频差式二倍频激光器的高性能铷钟特性描述。

Characterization of Frequency-Doubled 1.5- m Lasers for High-Performance Rb Clocks.

出版信息

IEEE Trans Ultrason Ferroelectr Freq Control. 2018 Jun;65(6):919-926. doi: 10.1109/TUFFC.2018.2793419.

Abstract

We report on the characterization of two fiber-coupled 1.5- diode lasers, frequency-doubled and stabilized to Rubidium (Rb) atomic resonances at 780 nm. Such laser systems are of interest in view of their implementation in Rb vapor-cell atomic clocks, as an alternative to lasers emitting directly at 780 nm. The spectral properties and the instabilities of the frequency-doubled lasers are evaluated against a state-of-the-art compact Rb-stabilized laser system based on a distributed-feedback laser diode emitting at 780 nm. All three lasers are frequency stabilized using essentially identical Doppler-free spectroscopy schemes. The long-term optical power fluctuations at 780 nm are measured, simultaneously with the frequency instability measurements done by three beat notes established between the three lasers. One of the frequency-doubled laser systems shows at 780 nm excellent spectral properties. Its relative intensity noise <10 Hz is one order of magnitude lower than the reference 780-nm laser, and the frequency noise <10 Hz/Hz is limited by the laser current source. Its optical frequency instability is at s, limited by the reference laser, and better than at all timescales up to one day. We also evaluate the impact of the laser spectral properties and instabilities on the Rb atomic clock performance, in particular taking into account the light-shift effect. Optical power instabilities on long-term timescales, largely originating from the frequency-doubling stage, are identified as a limitation in view of high-performance Rb atomic clocks.

摘要

我们报告了两种光纤耦合的 1.5 倍二极管激光器的特性,它们的频率被双频到 780nm 的铷(Rb)原子共振,并被稳定下来。鉴于它们在 Rb 蒸气室原子钟中的应用,这些激光系统作为直接在 780nm 处发射的激光的替代品具有重要意义。评估了倍频激光的光谱特性和不稳定性,与基于在 780nm 处发射的分布式反馈激光二极管的最先进的紧凑型 Rb 稳定激光系统进行了对比。所有三种激光器都使用本质上相同的无多普勒自由光谱方案进行频率稳定。同时测量了 780nm 处的长期光功率波动,以及通过在三种激光之间建立的三个拍频建立的频率不稳定性测量。倍频激光系统之一在 780nm 处显示出极好的光谱特性。其相对强度噪声<10Hz,比参考 780nm 激光低一个数量级,<10Hz/Hz 的频率噪声受激光电流源限制。其光频不稳定性为 s,受参考激光限制,在一天内的所有时间尺度上均优于参考激光。我们还评估了激光光谱特性和不稳定性对 Rb 原子钟性能的影响,特别是考虑到光移效应。长期时间尺度上的光功率不稳定性,主要源自倍频阶段,是高性能 Rb 原子钟的一个限制因素。

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