Title :
Influence of gain saturation, gain asymmetry, and pump/probe depletion on wavelength conversion efficiency of FWM in semiconductor optical amplifiers
Author :
Kothari, N.C. ; Blumenthal, Daniel J.
Author_Institution :
Sch. of Electr. & Comput. Eng., Georgia Inst. of Technol., Atlanta, GA, USA
fDate :
10/1/1996 12:00:00 AM
Abstract :
The effects of gain saturation, gain asymmetry, and pump/probe depletion on the conversion efficiency of four-wave mixing (FWM) in semiconductor optical amplifiers are studied analytically and numerically. The power dependence of FWM coupling coefficients and ultrafast relaxation-related gain mechanisms are included in the model. By studying the FWM efficiency in the transition from unsaturated to strongly saturated regions, it is seen that gain asymmetry results in deviation from small-signal models when the pump-probe detuning and pump powers are small. At high pump injection or gain conditions, it is also shown that the small-signal model breaks down even for relatively large detuning frequencies. Probe depletion is also seen to be critical under saturated conditions and an upper bound is derived for ranges of input pump power, pump-probe detuning, and gain for a given amplifier under which the small-signal model is valid
Keywords :
laser theory; laser tuning; multiwave mixing; optical couplers; optical pumping; optical saturation; semiconductor device models; semiconductor lasers; symmetry; FWM; FWM coupling coefficients; FWM efficiency; conversion efficiency; four-wave mixing; gain asymmetry; gain saturation; high pump injection; input pump power; large detuning frequencies; power dependence; pump powers; pump-probe detuning; pump/probe depletion; saturated conditions; semiconductor optical amplifiers; small-signal model; small-signal models; strongly saturated regions; ultrafast relaxation-related gain mechanisms; unsaturated regions; wavelength conversion efficiency; Couplings; Frequency conversion; Optical amplifiers; Optical frequency conversion; Optical wavelength conversion; Partial differential equations; Power amplifiers; Probes; Semiconductor optical amplifiers; Upper bound;
Journal_Title :
Quantum Electronics, IEEE Journal of