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학술지 Electroabsorption Modulated Laser with High Immunity to Residual Facet Reflection
Cited 8 time in scopus Download 7 time Share share facebook twitter linkedin kakaostory
저자
권오기, 백용순, 정윤철
발행일
201209
출처
IEEE Journal of Quantum Electronics, v.48 no.9, pp.1203-1213
ISSN
0018-9197
출판사
IEEE
DOI
https://dx.doi.org/10.1109/JQE.2012.2206799
협약과제
11MB2400, 100G 이더넷용 광송수신기 개발, 백용순
초록
We report on the design for an electroabsorption-modulated laser (EML) that can provide a high immunity to the optical signal reflected from its output facet without any fabrication complexity and performance compromise. In particular, we theoretically investigate the effects of residual facet reflection on the static and dynamic performances of the high-speed EMLs. For this analysis, an accurate and consistent time-domain transfer-matrix-based laser model is developed. Based on this model, we perform the steady-state and large-signal analyses for the EML with finite facet reflectivities. The simulation result indicates that the EML with a high-gain compression factor is capable of reducing the power fluctuation and facet reflection-induced chirp under large-signal modualtion. Thus, it is desirable to design for increasing the damping of a distributed feedback (DFB) laser to realize the EML with a high immunity to this facet reflection. The simulation also shows that the effect of this facet reflection strongly depends on the phase condition between the optical signal reflected from the output facet and the light emitted from the DFB laser and, in particular, at that specific phase condition, a clear eye opening appears even at the relatively high-output facet reflectivity (i.e., R f=1%). © 2012 IEEE.
키워드
Distributed feedback (DFB) laser, electroabsorption modulator (EAM), electroabsorption-modulated laser (EML), large-signal modulation, residual facet reflection, time-domain transfer matrix model
KSP 제안 키워드
Compression factor, Distributed feedback (DFB) laser, Electroabsorption modulated laser(EML), Facet reflectivity, High Speed, Large-signal modulation, Matrix model, Optical signal, Static and dynamic performances, Time-domain transfer matrix, electroabsorption modulator(EAM)