Title :
Optical gain and gain suppression of quantum-well lasers with valence band mixing
Author :
Ahn, Doyeol ; Chuang, Shun-Lien
Author_Institution :
Dept. of Electr. & Comput. Eng., Illinois Univ., Urbana, IL, USA
fDate :
1/1/1990 12:00:00 AM
Abstract :
The effects of valence band mixing on the nonlinear gains of quantum-well lasers are studied theoretically for the first time. The analysis is based on the multiband effective-mass theory and the density matrix formalism with intraband relaxation taken into account. The gain and the gain-suppression coefficient of a quantum-well laser are calculated from the complex optical susceptibility obtained by the density matrix formulation with the theoretical dipole moments obtained from the multiband effective-mass theory. The calculated gain spectrum shows that there are differences (both in peak amplitude and spectral shape) between this model with valence band mixing and the conventional parabolic band model. The shape of the gain spectrum calculated by the new model becomes more symmetric due to intraband relaxation together with nonparabolic energy dispersions. Optical intensity in the GaAs active region is estimated by solving rate equations for the stationary states with nonlinear gain suppression
Keywords :
III-V semiconductors; gallium arsenide; laser theory; matrix algebra; nonlinear optics; optical susceptibility; semiconductor junction lasers; GaAs active region; calculated gain spectrum shape; complex optical susceptibility; conventional parabolic band model; density matrix formalism; gain spectrum; gain suppression; gain-suppression coefficient; intraband relaxation; laser gain coefficient; multiband effective-mass theory; nonlinear gain suppression; nonlinear gains; nonparabolic energy dispersions; optical gain; optical intensity; peak amplitude; quantum-well lasers; rate equations; spectral shape; stationary states; theoretical dipole moments; valence band mixing; Dispersion; Electron optics; Gain; Laser theory; Nonlinear optics; Optical mixing; Quantum mechanics; Quantum well lasers; Semiconductor lasers; Spectral shape;
Journal_Title :
Quantum Electronics, IEEE Journal of