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All-optical fiber signal processing and regeneration for soliton communications

机译:用于孤子通信的全光纤信号处理和再生

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Ultrafast all-optical signal processing techniques are expected to play a major role in future ultrafast single-carrier soliton systems, because they remove the electronics bottleneck. In this paper, two all-optical devices, the nonlinear optical loop mirror (NOLM) and the Kerr fiber modulator (KFM), are used to achieve major functions related to high bit rate soliton links. At the interface with existing networks, conversions from data at the nonreturn-to-zero (NRZ) format to return-to-zero (RZ) and soliton data, and vice-versa are required. These two conversions are demonstrated through NOLMs, and their limitations investigated. However, the main part of this paper is devoted to in-line soliton regeneration through synchronous modulation. Synchronous modulation requires both clock recovery and in-line optical modulation. In the following, all-optical approaches for these two functions are considered separately, before being associated in a true all-optical regenerator. All-optical clock recovery techniques are first reviewed. An experimental implementation of one of these techniques is described. On the other hand, all-optical modulation can be done either with intensity or phase modulators. We initially proposed the NOLM as all-optical intensity modulator. We analyze it theoretically, both from the component and the system application viewpoints. A modified configuration of the NOLM, having two optical controls, removes some limitations pertaining to the single-control configuration, yielding even higher performance. The other all-optical synchronous modulator considered here is the KFM, which is a pure phase modulator. Its potential is demonstrated in a 20-Gb/s soliton transmission experiment, when driven by an optoelectronic optical clock generation device. Issues specific to the implementation of both types of all-optical fiber-based modulators are discussed. Finally, a true all-optical synchronous regenerator, combining all-optical clock recovery circuit and KFM, is tested in an actual soliton transmission experiment at 20 Gb/s.
机译:由于超快全光信号处理技术消除了电子瓶颈,因此有望在未来的超快单载波孤子系统中发挥重要作用。在本文中,使用了两个全光学设备,即非线性光学环形镜(NOLM)和Kerr光纤调制器(KFM),来实现与高比特率孤子链路有关的主要功能。在与现有网络的接口上,需要从不归零(NRZ)格式的数据到归零(RZ)和孤子数据的转换,反之亦然。通过NOLM演示了这两种转换,并研究了它们的局限性。然而,本文的主要部分致力于通过同步调制进行在线孤子再生。同步调制需要时钟恢复和在线光调制。在下面,在与真正的全光再生器关联之前,将分别考虑这两个功能的全光方法。首先回顾了全光时钟恢复技术。描述了这些技术之一的实验实现。另一方面,可以使用强度或相位调制器完成全光调制。我们最初提出将NOLM作为全光强度调制器。我们从组件和系统应用的角度进行理论分析。具有两个光学控件的NOLM的修改配置消除了与单控件配置有关的一些限制,从而产生了更高的性能。这里考虑的另一种全光同步调制器是KFM,它是纯相位调制器。当由光电光时钟发生设备驱动时,其潜力在20 Gb / s孤子传输实验中得到了证明。讨论了两种类型的基于全光纤的调制器的实现所特有的问题。最后,在实际的孤子传输实验中以20 Gb / s的速度对真正的全光同步再生器(结合了全光时钟恢复电路和KFM)进行了测试。

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