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Software-defined silicon-photonics- based metro node for spatial and wavelength superchannel switching

机译:基于软件定义的基于硅光子的城域节点,用于空间和波长超通道切换

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摘要

Due to the growing popularity of optical superchannels and software-defined networking, reconfigurable optical add-drop multiplexer (ROADM) architectures for superchannel switching have recently attracted significant attention. ROADMs based on micro-electro-mechanical system (MEMS) and liquid crystal-on-silicon (LCoS) technologies are predominantly used. Motivated by requirements for low power, high-speed, small area footprint, and compact switching solutions, we propose and demonstrate spatial and wavelength flexible superchannel switching using monolithically integrated silicon photonics (SiP) micro-ring resonators (MRRs). We demonstrate the MRRs’ capabilities and potential to be used as a fundamental building block in ROADMs. Unicast and multicast switching operation of an entire superchannel is demonstrated after transmission over 50 km of standard single mode fiber. The performance of each sub-channel from the 120 Gb∕s QPSK Nyquist superchannel is analyzed, and degradation in error vector magnitude performance was observed for outer sub-channels due to the 3 dB bandwidth of the MRRs, which is comparable with the superchannel bandwidth. However, all sub-channels for all switching cases (unicast, multicast, and bi-directional operation) exhibit performance far below the 7%FEClimit. The switching time of the SiPMRRchip is such that high-capacity superchannel interconnects between users can be set up and reconfigured on the microsecond time scale.
机译:由于光学超级通道和软件定义网络的日益普及,用于超级通道交换的可重配置光学分插复用器(ROADM)体系结构最近引起了广泛关注。主要使用基于微机电系统(MEMS)和硅上液晶(LCoS)技术的ROADM。出于对低功耗,高速,小面积占用空间和紧凑型开关解决方案的要求,我们提出并演示了使用单片集成硅光子(SiP)微环谐振器(MRR)的空间和波长灵活的超通道开关。我们展示了MRR的功能和潜力,可将其用作ROADM的基本构件。在超过50 km的标准单模光纤上传输后,演示了整个超级通道的单播和多播交换操作。分析了120 Gbs QPSK Nyquist超级信道中每个子信道的性能,并观察到由于MRR的3 dB带宽,外部子信道的误差矢量幅度性能下降,这与超级信道带宽相当。但是,所有交换情况(单播,多播和双向操作)的所有子信道都表现出远远低于7%FEC限制的性能。 SiPMRRchip的切换时间使得可以在微秒级的时间范围内建立和重新配置用户之间的大容量超通道互连。

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