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SOA nonlinearities in 4 × 25 Gb/s WDM pre-amplified system for 100-Gb/s Ethernet

机译:用于100 Gb / s以太网的4×25 Gb / s WDM预放大系统中的SOA非线性

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摘要

A simulation analysis of the impact that the nonlinear response of a semiconductor optical amplifier (SOA) has in a four-channel WDM pre-amplified transmission system is presented in the framework of the recently proposed extended-reach (40-km, 4 × 25 Gb/s) 100 Gb Ethernet link. Channel spacing values ranging from 200 to 800 GHz, and fiber losses between 0 and - 20 dB are considered. A maximum power penalty of 4.5 dB is predicted for short fiber lengths and for the tightest channel plan. For short fiber lengths, the penalty drops by about 0.8 dB when moving from 400 to 800GHz; whereas for long fiber lengths, the penalty increases by 0.2 dB, provided that an average dispersive fiber is utilized. The widely spaced channel plan then represents the best choice in terms of the analyzed physical effects to implement the next-generation 100 GbE link. Further, our numerical investigation includes a discrimination analysis that confirms cross-gain modulation as the main overall SOA nonlinear impairment in the analyzed architecture, and establishes ultra-fast carrier heating-induced FWM as responsible for the system performance difference observed as a function of channel spacing. The difference practically vanishes for fiber lengths above 30 km. Finally, the proposal of an equation that fits the simulated power spectrum density of the first-order four-wave mixing-generated product as a function of channel spacing is presented as an aid to validate our numerical results.
机译:在最近提出的扩展范围(40 km,4×25)的框架中,对半导体光放大器(SOA)的非线性响应在四通道WDM预放大传输系统中产生的影响进行了仿真分析。 Gb / s)100 Gb以太网链路。信道间隔值介于200至800 GHz之间,并且光纤损耗介于0和-20 dB之间。对于短光纤长度和最严格的信道规划,预计最大功率损失为4.5 dB。对于短光纤,当从400GHz移至800GHz时,惩罚降低约0.8dB;对于短光纤,则降低约0.8dB。而对于长光纤,如果使用平均色散光纤,则损失增加0.2 dB。然后,就分析的物理效果而言,间隔较宽的信道计划代表了实现下一代100 GbE链路的最佳选择。此外,我们的数值研究包括判别分析,该判别分析确认交叉增益调制是所分析体系结构中主要的总体SOA非线性损伤,并建立了超快载流子加热引起的FWM,这是观察到的系统性能差异随通道而变化的原因间距。当光纤长度超过30 km时,这种差异实际上消失了。最后,提出了一个方程的建议,该方程适合作为通道间隔函数的一阶四波混频产生的产品的模拟功率谱密度,以帮助验证我们的数值结果。

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