Title :
Detailed model and investigation of gain saturation and carrier spatial hole burning for a semiconductor optical amplifier with gain clamping by a vertical laser field
Author :
Jin, Chao-Yuan ; Huang, Yong-Zhen ; Yu, Li-Juan ; Deng, Shen-Ling
Author_Institution :
State Key Lab. on Integrated Optoelectronics, Chinese Acad. of Sci., Beijing, China
fDate :
5/1/2004 12:00:00 AM
Abstract :
A detailed model for semiconductor linear optical amplifiers (LOAs) with gain clamping by a vertical laser field is presented, which accounts the carrier and photon density distribution in the longitudinal direction as well as the facet reflectivity. The photon iterative method is used in the simulation with output amplified spontaneous emission spectrum in the wide band as iterative variables. The gain saturation behaviors and the noise figure are numerically simulated, and the variation of longitudinal carrier density with the input power is presented which is associated with the on-off state of the vertical lasers. The results show that the LOA can have a gain spectrum clamped in a wide wavelength range and have almost the same value of noise figure as that of conventional semiconductor optical amplifiers (SOAs). Numerical results also show that an LOA can have a noise figure about 2 dB less than that of the SOA gain clamped by a distributed Bragg reflector laser.
Keywords :
carrier density; iterative methods; laser noise; optical hole burning; optical saturation; reflectivity; semiconductor optical amplifiers; superradiance; SOA; amplified spontaneous emission spectrum; carrier density distribution; carrier spatial hole burning; distributed Bragg reflector laser; facet reflectivity; gain clamping; gain saturation; gain spectrum clamping; iterative variables; longitudinal carrier density; noise figure; on-off state; photon density distribution; photon iterative method; semiconductor linear optical amplifier; semiconductor optical amplifier; semiconductor optical amplifiers; vertical laser field; vertical lasers; Clamps; Distributed amplifiers; Iterative methods; Laser modes; Laser noise; Noise figure; Optical saturation; Semiconductor lasers; Semiconductor optical amplifiers; Stimulated emission;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2004.826427