Title :
A rigorous analysis of tunable semiconductor lasers with built-in grating-assisted vertical coupler filter
Author :
Hong, J. ; Huang, W.-P.
Author_Institution :
Dept. of Electr. & Comput. Eng., Waterloo Univ., Ont., Canada
fDate :
12/1/1993 12:00:00 AM
Abstract :
A general theoretical model is established and analyzed for a tunable semiconductor laser with a built-in co-directional grating-assisted vertical coupler filter. Possible internal reflection at the gain-coupler junction is included. A rigorous coupled-mode formulation based on the composite modes in the absence of the grating perturbation and a mode-matching method at the waveguide junctions is combined with multimode rate equation analysis. The dispersion of the semiconductor material is also included in the model. The accuracy and the scope of validity of the model are verified for both weakly and strongly coupled filter structures. Simple expressions for equivalent mirror reflectance, lasing wavelength, threshold gain and side-mode suppression ratio (SMSR) are derived and typical examples examined. The effects of the filter and the internal reflection on the longitudinal mode selectivity are discussed
Keywords :
diffraction gratings; laser theory; laser tuning; optical couplers; optical filters; semiconductor lasers; built-in grating-assisted vertical coupler filter; co-directional grating-assisted vertical coupler filter; composite modes; coupled-mode formulation; equivalent mirror reflectance; gain-coupler junction; internal reflection; lasing wavelength; longitudinal mode selectivity; mode-matching method; multimode rate equation analysis; rigorous analysis; semiconductor material dispersion; side-mode suppression ratio; strongly coupled filter structures; threshold gain; tunable semiconductor lasers; waveguide junctions; weakly coupled filter structures; Filters; Gratings; Laser modes; Laser theory; Optical coupling; Optical reflection; Semiconductor lasers; Tunable circuits and devices; Waveguide junctions; Waveguide lasers;
Journal_Title :
Quantum Electronics, IEEE Journal of