论文标题
瑞利反向散射噪声的基本局限
Fundamental Limitations of Rayleigh Backscattering Noise on Fiber-Based Multiple-Access Optical Frequency Transfer
论文作者
论文摘要
虽然已经表明,可以通过在本地和远程位点采用声学调节器(AOM)来抑制反向散射感应的相位噪声,以在两个方向上打破频率对称性。但是,对于常规的光纤多访问相干光相传播,无法避免此问题,在这种情况下,信号灯对雷利反向散射光的干扰可能会破坏稳定光学信号的连贯性。我们通过插入额外的AOM在提取点上局部打破频率对称性来抑制反向散射效果。在这里,我们从理论上分析并实验证明了另一种AND-AOM方法来抑制光纤链路内的雷利反向散射。通过测量消除信号灯的常见干扰项和雷利反向散射的光,通过测量消除了反向散射噪声的几乎完全抑制。结果表明,与系统性能的残留延迟受限相位噪声相比,瑞利反向散射光的效果有限。我们的结果还提供了新的证据,表明在长的光纤连接中可以在很大程度上抑制雷利和其他反向散射噪声,在该连接中,通过在每个访问节点上使用频率对称性断裂来实现稳健多的多孔相干相位相传播,而在散射或缺陷中,则使用频率对称性断裂来实现稳健的多方相干相位相传播。
While it has been shown that backscattering induced phase noise can be suppressed by adopting acoustic-optic-modulators (AOMs) at the local and remote sites to break the frequency symmetry in both directions. However, this issue can not be avoided for conventional fiber-optic multiple-access coherent optical phase dissemination in which the interference of the signal light with the Rayleigh backscattered light will probably destroy the coherence of the stabilized optical signal. We suppress the backscattering effect by locally breaking the frequency symmetry at the extraction point by inserting an additional AOM. Here, we theoretically analyze and experimentally demonstrate an add-drop one more AOM approach for suppressing the Rayleigh backscattering within the fiber link. Near-complete suppression of backscattering noise is experimentally confirmed through the measurement the elimination of a common interference term of the signal light and the Rayleigh backscattered light. The results demonstrate that the Rayleigh backscattering light has a limited effect compared to the residual delay-limited fiber phase noise on the system's performance. Our results also provide new evidence that it is possible to largely suppress Rayleigh and other backscattering noise within a long optical fiber link, where the accumulated phase noise could be large, by using frequency symmetry breaking at each access node to achieve robust multiple-access coherent optical phase propagation in spite of scatters or defects.