研究目的
Investigating the performance of lasers with non-white FM noise in digital coherent optical systems and proposing a 'Lorentzian-equivalent linewidth' measure for better performance prediction.
研究成果
The study concludes that the spectral FWHM linewidth alone is insufficient to characterize phase noise for lasers with non-white FM noise. A 'Lorentzian-equivalent linewidth' measure, evaluated at high sampling frequencies, is proposed as a more accurate predictor of system performance. The findings suggest that QD-MLLs with several MHz linewidths can perform comparably to lasers with narrower linewidths in coherent systems, due to their non-white FM noise characteristics.
研究不足
The study is limited by the specific characteristics of the QD-MLLs used, and the generalizability of the findings to other types of lasers with non-white FM noise may require further investigation. The impact of additive noise in measurement setups on phase noise variance estimation is also a constraint.
1:Experimental Design and Method Selection:
The study involved measuring the FM noise power spectral density of QD-MLLs and comparing it to their linewidths. Simulations and back-to-back coherent transmission experiments were conducted to assess performance.
2:Sample Selection and Data Sources:
Quantum-dot mode-locked lasers (QD-MLLs) with different repetition frequencies were used, along with an ECL and a DFB laser for comparison.
3:List of Experimental Equipment and Materials:
A phase-diversity coherent receiver, 2×4 optical hybrid, balanced photodetectors, transimpedance amplifiers, tunable optical bandpass filter, polarization controller, dual-channel real-time sampling oscilloscope (RTSO), and MATLAB for offline processing.
4:Experimental Procedures and Operational Workflow:
The optical field envelope was down-shifted to the RF domain through heterodyne detection. Phase noise analysis and CPR performance estimation were conducted offline.
5:Data Analysis Methods:
The phase noise was analyzed using MATLAB, focusing on the variance of phase difference and its relation to FM noise spectral density.
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