Title :
Static and dynamic response of multiple-quantum-well voltage-controlled bistable laser diodes
Author :
Uenohara, Hiroyuki ; Takahashi, Ryo ; Kawamura, Yuichi ; Iwamura, Hidetoshi
Author_Institution :
NTT Opto-Electron. Labs., Atsugi, Japan
fDate :
5/1/1996 12:00:00 AM
Abstract :
We have simulated the static and dynamic characteristics of voltage-controlled multiple-quantum-well (MQW) bistable laser diodes. To investigate the time response of the saturable absorber under applied electric field, we performed pump-probe measurements with picosecond resolution. The obtained differential transmission signals indicate the reduction of the carrier escape time for the saturable absorber with increasing applied electric field. The field screening effect caused by spatial change of the carrier distribution is an important factor, as is phase space filling due to the photogenerated carriers. On the basis of the time response measurements, we have designed an MQW bistable laser by solving the modified rate equation including the recovery time response of the absorption saturation, A saturable absorption region narrower than 10 μm is suitable for obtaining a low threshold device. To achieve low switching power and high switching speed, it is important to optimize the bias conditions and the MQW structures. We can expect a turn-off time of less than 10 ps, and a repetition rate of over 5 GHz from the calculations
Keywords :
carrier density; dynamic response; electro-optical switches; high-speed optical techniques; laser theory; optical bistability; optical saturable absorption; quantum well lasers; 10 mum; 10 ps; MQW bistable laser design; MQW bistable laser diodes; applied electric field; carrier distribution; carrier escape time; differential transmission signals; dynamic response; field screening effect; important factor; low switching power; modified rate equation; multiple-quantum-well voltage-controlled bistable laser diodes; phase space filling; photogenerated carriers; picosecond resolution; pump-probe measurements; recovery time response; saturable absorber; spatial change; static response; time response; time response measurements; Absorption; Diode lasers; Electric variables measurement; Performance evaluation; Quantum well devices; Signal resolution; Spatial resolution; Time factors; Time measurement; Voltage;
Journal_Title :
Quantum Electronics, IEEE Journal of