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Phase noise influence in coherent optical DnPSK systems with DSP based dispersion compensation

机译:具有基于DSP的色散补偿的相干光学DnPSK系统中的相位噪声影响

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摘要

We present a comparative study of the influence of dispersion induced phase noise for n-level PSK systems. From the analysis, we conclude that the phase noise influence for classical homodyne/heterodyne PSK systems is entirely determined by the modulation complexity (expressed in terms of constellation diagram) and the analogue demodulation format. On the other hand, the use of digital signal processing (DSP) in homodyne/intradyne systems renders a fiber length dependence originating from the generation of equalization enhanced phase noise. For future high capacity systems, high constellations must be used in order to lower the symbol rate to practically manageable speeds, and this fact puts severe requirements to the signal and local oscillator (LO) linewidths. Our results for the bit-error-rate (BER) floor caused by the phase noise influence in the case of QPSK, 16PSK and 64PSK systems outline tolerance limitations for the LO performance: 5 MHz linewidth (at 3-dB level) for 100 Gbit/s QPSK; 1 MHz for 400 Gbit/s QPSK; 0.1 MHz for 400 Gbit/s 16PSK and 1 Tbit/s 64PSK systems. This defines design constrains for the phase noise impact in distributed-feed-back (DFB) or distributed-Bragg-reflector (DBR) semiconductor lasers, that would allow moving the system capacity from 100 Gbit/s system capacity to 400 Gbit/s in 3 years (1 Tbit/s in 5 years). It is imperative at the same time to increase the analogue to digital conversion (ADC) speed such that the single quadrature symbol rate goes from today's 25 GS/s to 100 GS/s (using two samples per symbol).
机译:我们目前对色散引起的相位噪声对n级PSK系统的影响进行比较研究。通过分析,我们得出结论,经典零差/外差PSK系统的相位噪声影响完全取决于调制复杂度(以星座图表示)和模拟解调格式。另一方面,在零差/ intradyne系统中使用数字信号处理(DSP)使得光纤长度依赖性源自均衡增强相位噪声的产生。对于未来的大容量系统,必须使用高星座图,以将符号率降低到实际可控制的速度,并且这一事实对信号和本地振荡器(LO)的线宽提出了严格的要求。在QPSK,16PSK和64PSK系统的情况下,由相位噪声影响导致的误码率(BER)基底的结果概述了LO性能的容限:100 Gbit的5 MHz线宽(3 dB级别) / s QPSK;对于400 Gbit / s QPSK为1 MHz;对于400 Gbit / s 16PSK和1 Tbit / s 64PSK系统为0.1 MHz。这为分布式反馈(DFB)或分布式布拉格反射器(DBR)半导体激光器中的相位噪声影响定义了设计约束,这将允许将系统容量从100 Gbit / s的系统容量提升到400 Gbit / s的系统容量。 3年(5年内为1 Tbit / s)。必须同时提高模数转换(ADC)的速度,以使单个正交符号速率从当今的25 GS / s增至100 GS / s(每个符号使用两个样本)。

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