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基于光学频率梳的多频微波信号在100公里光纤上具有高相位稳定性的分布。

Distribution of optical-comb-based multi-frequency microwave signals over 100 km optical fiber with high phase stability.

作者信息

Deng Nan, Wei Wei, Liu Zhangweiyi, Xie Weilin, Dong Yi

出版信息

Opt Express. 2020 May 25;28(11):16634-16643. doi: 10.1364/OE.386721.

Abstract

We demonstrate a long-distance multi-frequency microwave distribution system over an optical fiber link with high phase stability based on transferring an optical frequency comb (OFC). The phase fluctuation induced by the transmission link variations is detected by applying a reference OFC and is then compensated with the proposed optical voltage-controlled oscillator (OVCO) by adjusting the phase of the repetition rate of the transmitted OFC. By applying the OVCO, we perform the OFC-based multi-frequency microwave distribution over a 100 km standard single-mode fiber. The performance of the transmission system can be exhibited by evaluating the repetition rate (10.015 GHz) and second harmonic frequency (20.03 GHz) signals achieved at the remote end. The residual phase noise of the 10.015 GHz and 20.03 GHz signal is -64 dBc/Hz and -58 dBc/Hz at 1 Hz frequency offset from the carrier, respectively. The fractional frequency instability is 1.4×10 and 2.4×10 at 10000 s averaging time, respectively. And the timing jitter in the frequency range from 0.01 Hz to 1 MHz reaches 88 fs and 87 fs, respectively. Based on the phase-locked loop theory, we conduct a simulation model of the transmission system and the simulated results match well with experiments. It shows that by detecting the phase fluctuation with higher harmonic frequency signals in the simulation system, the performance of the transmission system can be further improved.

摘要

我们展示了一种基于传输光频梳(OFC)的、具有高相位稳定性的、通过光纤链路的长距离多频微波分布系统。通过应用参考光频梳来检测由传输链路变化引起的相位波动,然后通过调整发射光频梳重复率的相位,利用所提出的光压控振荡器(OVCO)进行补偿。通过应用OVCO,我们在100 km标准单模光纤上实现了基于光频梳的多频微波分布。传输系统的性能可以通过评估在远端获得的重复率(10.015 GHz)和二次谐波频率(20.03 GHz)信号来展现。在相对于载波1 Hz频率偏移处,10.015 GHz和20.03 GHz信号的残余相位噪声分别为-64 dBc/Hz和-58 dBc/Hz。在10000 s平均时间下,分数频率不稳定度分别为1.4×10和2.4×10。并且在0.01 Hz至1 MHz频率范围内的定时抖动分别达到88 fs和87 fs。基于锁相环理论,我们构建了传输系统的仿真模型,仿真结果与实验结果吻合良好。结果表明,通过在仿真系统中利用更高谐波频率信号检测相位波动,可以进一步提高传输系统的性能。

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