Title :
Extended robust semiconductor laser modeling for analog optical link simulations
Author :
Ghoniemy, Samy ; MacEachern, Leonard ; Mahmoud, Samy
Author_Institution :
Dept. of Syst. & Comput. Eng. & the Dept. of Electron., Carleton Univ., Ottawa, Ont., Canada
Abstract :
An enhanced semiconductor laser model incorporating gain nonlinearities, gain saturation, index nonlinearities, leakage current, thermal effects, and noise effects is presented. Symbolically defined devices based on the proposed models are implemented in the Hewlett-Packard Advanced Design System computer-aided design tool. The laser model enables the simulation of the transient and steady-state dynamic characteristics of laser diodes such as carrier, photon concentration, optical power, and phase. Using the proposed model, important laser characteristics such as relaxation-oscillation peak frequency and modulation bandwidth are evaluated under different conditions and compared to published measurement results. Analog optical transmission performance limitations such as laser diode nonlinearity and noise are determined in both the time and frequency domains.
Keywords :
frequency modulation; frequency response; frequency-domain analysis; laser noise; leakage currents; nonlinear distortion; optical modulation; optical saturation; optical transmitters; semiconductor device models; semiconductor lasers; time-domain analysis; transient response; Hewlett-Packard Advanced Design System; analog optical link simulation; enhanced semiconductor laser model; extended robust laser modeling; frequency domain simulation; gain nonlinearities; gain saturation; index nonlinearities; laser frequency response; leakage current; modulation bandwidth; modulation response; noise effects; nonlinear distortion; optical transmission performance limitations; photon concentration; radio-over-fiber; relaxation-oscillation peak frequency; steady-state dynamic characteristics; thermal effects; time domain simulation; transient characteristics; transient response; Computational modeling; Diode lasers; Laser modes; Laser noise; Optical fiber communication; Optical noise; Power system modeling; Robustness; Semiconductor device noise; Semiconductor lasers;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2003.818841