Integrated frequency combs for flexible optical networks

P. Anandarajah, M. Deseada Gutierrez Pascual, S. O’duill, Jules Bradell, F. Smyth, P. Landais
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引用次数: 2

Abstract

Optical frequency comb (OFC) sources have proven to be useful in applications such as frequency metrology [1], spectroscopy [2], millimetre wave generation [3] and dense/ultra-dense wavelength division multiplexed high speed optical communications [4]. These applications require highly coherent, stable and cost efficient optical comb sources. Other important comb parameters include a flexible free spectral range (FSR) and uniform power distribution amongst the frequency components. Typical OFC sources generate multiple optical carriers offering low power consumption and complexity by replacing multiple independent lasers with a single subsystem. Therefore, OFCs ensure constant and stable frequency spacing between the carriers enabling the reduction or elimination of guard bands in advanced multicarrier modulation techniques. In order to enable/enhance the practical use of comb sources in >100G next generation optical transport networks, a key issue to be considered is the footprint/compactness of the device as this directly relates to the ease of manufacturing (cost), power consumption, and reliability. Therefore, monolithically integrated comb sources [5, 6] with simple and compact designs could be highly beneficial. In this work, the authors present the optimum features of an integrated externally injected master slave laser [7] used to generate a gain switched optical frequency comb [8]. In addition, the employment of this comb in a flexible optical networking environment will be reviewed and experimental results presented.
柔性光网络的集成频率梳
光学频率梳(OFC)源已被证明在频率计量[1]、光谱学[2]、毫米波产生[3]和密集/超密集波分复用高速光通信[4]等应用中是有用的。这些应用需要高相干、稳定和低成本的光梳源。其他重要的梳参数包括灵活的自由频谱范围(FSR)和频率分量之间的均匀功率分布。典型的OFC光源产生多个光载波,通过用单个子系统取代多个独立的激光器,提供低功耗和复杂性。因此,OFCs确保载波之间的频率间隔恒定和稳定,从而在先进的多载波调制技术中减少或消除保护带。为了在>100G的下一代光传输网络中实现/增强梳状源的实际应用,需要考虑的一个关键问题是设备的占地面积/紧凑性,因为这直接关系到制造(成本)、功耗和可靠性的易用性。因此,具有简单紧凑设计的整体集成梳状源[5,6]可能非常有益。在这项工作中,作者介绍了用于产生增益切换光学频率梳[8]的集成外部注入主从激光器[7]的最佳特性。此外,本文还讨论了该梳在灵活光网络环境中的应用,并给出了实验结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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