Title :
Repetition-rate dependence of gain compression in InGaAsP optical amplifiers using picosecond optical pulses
Author :
Hansen, Per Bang ; Wiesenfeld, Jay M. ; Eisenstein, Gad ; Tucker, Rodney S. ; Raybon, Gregory
Author_Institution :
AT&T Bell Lab., Holmdel, NJ, USA
fDate :
12/1/1989 12:00:00 AM
Abstract :
A two-level model of a semiconductor optical amplifier is used to calculate gain compression due to picosecond optical pulse injection. Gain compression (measured in decibels) is shown to depend linearly on output pulse energy, with a slope that is characterized by a saturation energy. The authors present measurements of gain compression in the three regimes of repetition rates. A very low repetition rate (200 kHz) is the single-pulse injection regime, 500 MHz to 2 GHz is the regime where the pulse period is comparable to the gain recovery time in the amplifier under test, and 3-6 GHz is the regime where the pulse period is smaller than the gain recovery time. In all cases, the measurements confirm the gain compression characteristics predicted by the model. They show that a short gain recovery time results in an increased output power for a given acceptable level of gain compression, as well as an increased gain level for a given output power
Keywords :
III-V semiconductors; gallium arsenide; gallium compounds; high-speed optical techniques; indium compounds; semiconductor device models; semiconductor junction lasers; 3 to 6 GHz; 500 to 2000 MHz; InGaAsP; gain compression; gain compression characteristics; gain compression measurements; gain recovery time; low repetition rate; optical amplifiers; output power; output pulse energy; picosecond optical pulse injection; picosecond optical pulses; pulse period; repetition rates; saturation energy; semiconductor optical amplifier; single-pulse injection regime; two-level model; Energy measurement; Gain measurement; Optical pulses; Optical saturation; Power generation; Pulse amplifiers; Pulse compression methods; Pulse measurements; Semiconductor optical amplifiers; Stimulated emission;
Journal_Title :
Quantum Electronics, IEEE Journal of