Title :
Gain clamping in semiconductor optical amplifiers with second-order index-coupled DFB grating
Author :
Park, Jongwoon ; Li, Xun ; Huang, Wei-Ping
Author_Institution :
Dept. of Electr. & Comput. Eng., McMaster Univ., Hamilton, Ont., Canada
fDate :
3/1/2005 12:00:00 AM
Abstract :
A systematic investigation of gain-clamped semiconductor optical amplifiers (GC-SOAs) based on the second-order index-coupled DFB gratings is carried out by way of simulation. In particular, we focus on the main effects of the radiation loss caused by the first-order diffraction of the gratings on the amplifier performance. The magnitude of the total complex coupling coefficient is the main factor to determine the level of gain clamping. We demonstrate that a high-performance GC-SOA can be realized by using purely loss-coupled second-order DFB gratings with more relaxed tolerance on grating strength and period. It is shown that, in the presence of weak reflection-related coupling, the parasitic radiation loss associated with the second-order grating always helps to expand the linear amplification region and to reduce the longitudinal spatial hole burning along the cavity. Further, we demonstrate through comparison that the GC-SOAs have higher saturation power and much shorter carrier lifetime than the conventional SOAs. An improved design by longitudinal variation of the grating duty cycle is proposed such that the noise performance of the amplifier can be enhanced without much sacrifice on the linear amplification regime.
Keywords :
carrier lifetime; diffraction gratings; distributed feedback lasers; laser cavity resonators; laser noise; light reflection; optical couplers; optical hole burning; optical losses; optical saturation; semiconductor optical amplifiers; DFB grating; carrier lifetime; complex coupling coefficient; first-order diffraction; gain clamping; grating duty cycle; index-coupled grating; linear amplification region; longitudinal spatial hole burning; loss-coupled diffraction gratings; noise performance; parasitic radiation loss; radiation loss; saturation power; second-order grating; semiconductor optical amplifiers; weak reflection-related coupling; Clamps; Gratings; Laser modes; Laser theory; Optical amplifiers; Optical feedback; Optical losses; Optical noise; Semiconductor optical amplifiers; Stimulated emission; Distributed feedback (DFB); gain clamping (GC); longitudinal spatial hole burning (LSHB); noise figure (NF); radiation loss; second-order grating (SOG); semiconductor optical amplifiers (SOAs);
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2004.841495