共振 EO 组合:超越频率梳的标准相位噪声模型

Holger R. Heebøll, Pooja Sekhar, Jasper Riebesehl, Aleksandr Razumov, Matt Heyrich, Michael Galili, Francesco Da Ros, Scott Diddams, Darko. Zibar
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引用次数: 0

摘要

谐振电光(EO)频梳是通过在光学谐振器内对激光进行电光调制而产生的。与单次通过调制器产生的无腔 EO 梳相比,谐振 EO 梳能以较低的射频(RF)功率产生更宽的频谱,并能在一定程度上过滤腔线宽以外的噪声。了解、测量和抑制共振 EO 梳中的相位噪声源对其在计量学、天体光子学、光学时钟生成和光纤通信中的应用至关重要。根据标准的频率梳相位噪声模型,只需要两个变量(共模偏移和重复率相位噪声)就能完全描述梳状线的相位噪声。然而,在这项工作中,我们通过分析、数值和实验证明,在短时标(高频率)和特定梳状参数下,这一标准模型对共振 EO 梳状线无效。具体来说,出现了第三个相位噪声分量。因此,共振环氧乙烷梳子的相位噪声与无腔梳子的相位噪声有本质区别,可能无法表现出预期的噪声滤波效果。对标准相位噪声模型的偏差进行更全面的描述,对于准确预测频率梳的性能至关重要。本文的描述为改进超连续发生和光通信等应用的设计铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Resonant EO combs: Beyond the standard phase noise model of frequency combs
A resonant electro-optic (EO) frequency comb is generated through electro-optic modulation of laser light within an optical resonator. Compared to cavity-less EO combs generated in a single pass through a modulator, resonant EO combs can produce broader spectra with lower radio frequency (RF) power and offer a measure of noise filtering beyond the cavity's linewidth. Understanding, measuring, and suppressing the sources of phase noise in resonant EO combs is crucial for their applications in metrology, astrophotonics, optical clock generation, and fiber-optic communication. According to the standard phase noise model of frequency combs, only two variables - the common mode offset and repetition rate phase noise - are needed to fully describe the phase noise of comb lines. However, in this work we demonstrate analytically, numerically, and experimentally that this standard model breaks down for resonant EO combs at short timescales (high frequencies) and under certain comb parameters. Specifically, a third phase noise component emerges. Consequently, resonant EO combs feature qualitatively different phase noise from their cavity-less counterparts and may not exhibit the anticipated noise filtering. A more complete description of the deviations from the standard phase noise model is critical to accurately predict the performance of frequency combs. The description presented here paves the way for improved designs tailored to applications such as super-continuum generation and optical communication.
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