倍频激光器高频相位噪声的前馈消除。

IF 3.3 2区 物理与天体物理 Q2 OPTICS
Optics express Pub Date : 2025-07-28 DOI:10.1364/OE.555801
Zhen-Xing Hua, Yu-Xin Chao, Chen Jia, Xin-Hui Liang, Zong-Pei Yue, Meng Khoon Tey
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引用次数: 0

摘要

使用前馈技术消除高频激光相位噪声,而不是反馈方法,近年来取得了重大进展。然而,将现有的前馈技术直接应用到基于非线性转换的激光系统中仍然面临着很大的挑战。本文提出并演示了一种利用倍频光基泵浦的相位噪声信息来抑制倍频光相位噪声的前馈方案。除了二次谐波产生增强腔引入的一阶低通滤波效应外,倍频光的相位抖动仅仅是泵浦的两倍,这一事实使该方案得以实现。在一个420 nm倍频激光系统上进行了测试,在420 nm光下,对1 MHz附近的伺服噪声抑制25 dB,对100 kHz ~ 20 MHz范围内的强注入噪声平均抑制30 dB。该方案在需要蓝光或紫外光的应用中显示出很大的潜力,并且具有最小的高频相位噪声,例如原子和分子的精确控制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Feedforward cancellation of high-frequency phase noise in frequency-doubled lasers.

The cancellation of high-frequency laser phase noise using feedforward techniques, as opposed to feedback methods, has achieved significant advancements in recent years. However, directly applying existing feedforward techniques to laser systems based on nonlinear conversion still faces substantial challenges. Here, we propose and demonstrate a feedforward scheme that suppresses phase noise in frequency-doubled light by utilizing phase noise information of its fundamental pump. This scheme is enabled by the fact that the phase jitter of the frequency-doubled light is simply twice that of the pump, except for a first-order low-pass filtering effect introduced by the second-harmonic generation enhancement cavity. Testing this method on a 420-nm frequency-doubled laser system, we realize a 25-dB suppression of the servo noise bump near 1 MHz on the 420-nm light, and an average suppression of 30 dB for strong injected noise ranging from 100 kHz to 20 MHz. This scheme shows promising potential for applications requiring blue or ultraviolet light with minimal high-frequency phase noise, such as precision control of atoms and molecules.

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来源期刊
Optics express
Optics express 物理-光学
CiteScore
6.60
自引率
15.80%
发文量
5182
审稿时长
2.1 months
期刊介绍: Optics Express is the all-electronic, open access journal for optics providing rapid publication for peer-reviewed articles that emphasize scientific and technology innovations in all aspects of optics and photonics.
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