Title :
Digital filter approach for Simulation of a complex integrated laser diode based on the traveling-wave model
Author :
Li, Wei ; Huang, Wei-Ping ; Li, Xun
Author_Institution :
Dept. of Chem. & Eng. Phys., Univ. of Wisconsin, Platteville, WI, USA
fDate :
5/1/2004 12:00:00 AM
Abstract :
The traveling-wave model is commonly used in the simulation of semiconductor laser diodes and photonic integrated circuits. When the laser diode is cascaded with other passive elements of relatively large optical dimension or complicated structure such as a sophisticated distributed Bragg reflector section, the conventional approach by tracing the forward and the backward traveling waveform along the entire passive section in the time domain becomes time consuming or technically impossible. To overcome this difficulty, a split-step approach is proposed in this study. Since the spectral characteristics of the passive sections are known from analytical/numerical calculations or experimental measurement, the effective time-domain digital filters are introduced for the passive components. Therefore, in the simulation, the laser diode part is still modeled by the traveling-wave approach, but the digital filters are used to model the passive components butted at the end of the active part, which interact with the optical field of the laser diode at the interface.
Keywords :
digital filters; distributed feedback lasers; integrated optics; optical filters; semiconductor device models; semiconductor lasers; time-domain analysis; complex integrated laser diode; digital filter approach; distributed Bragg reflector; frequency-domain analysis; laser simulation; passive components; photonic integrated circuits; semiconductor laser diodes; split-step approach; time-domain analysis; traveling-wave model; Circuit simulation; Digital filters; Diode lasers; Distributed Bragg reflectors; Integrated circuit modeling; Laser modes; Optical filters; Optical signal processing; Time domain analysis; Transmission line matrix methods;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2004.826436