DocumentCode :
836692
Title :
A comprehensive VCSEL device simulator
Author :
Streiff, Matthias ; Witzig, Andreas ; Pfeiffer, Michael ; Royo, Paul ; Fichtner, Wolfgang
Author_Institution :
Integrated Syst. Lab., Swiss Fed. Inst. of Technol., Zurich, Switzerland
Volume :
9
Issue :
3
fYear :
2003
Firstpage :
879
Lastpage :
891
Abstract :
This paper deals with the design and implementation of a self-consistent electrothermooptical device simulator for vertical-cavity surface-emitting lasers (VCSELs). The model is based on the photon rate equation approach. For the bulk electrothermal transport, a thermodynamic model is employed in a rotationally symmetric body. Heterojunctions are modeled using a thermionic emission model and quantum wells are treated as scattering centers for carriers. The optical field is expanded into modes that are eigensolutions of the vectorial electromagnetic wave equation with an arbitrary, complex dielectric function. The open nature of the VCSEL cavity is treated by employing perfectly matched layers. The optical gain and absorption model in the quantum-well active region is based on Fermi´s Golden Rule. The subbands in the quantum well are determined by solving the stationary Schrodinger equation and using a parabolic band approximation for the electrons, light and heavy holes. The photon rate equation is fully integrated into the Newton-Raphson scheme used to solve the system of nonlinear device equations. An efficient numerical optical mode solver is used, that is based on a Jacobi-Davidson type iterative eigensolver. The latter combines a continuation scheme with preconditioner recycling. The practical relevance of the implementation is demonstrated with the simulation of a realistic etched-mesa VCSEL device.
Keywords :
Maxwell equations; Newton-Raphson method; Poisson equation; Schrodinger equation; convergence of numerical methods; dielectric function; distributed Bragg reflector lasers; eigenvalues and eigenfunctions; electronic engineering computing; finite element analysis; physics computing; quantum well lasers; semiconductor device models; surface emitting lasers; Jacobi-Davidson type iterative eigensolver; Maxwell´s equations; Newton-Raphson scheme; Poisson equation; bulk electrothermal transport; carrier scattering centers; complex dielectric function; convergence properties; distributed Bragg resonator mirror; efficient numerical optical mode solver; eigensolutions; electrothermooptical device simulator; finite-element method; parabolic band approximation; perfectly matched layers; photon rate equation approach; preconditioner recycling; quantum wells; realistic etched-mesa device; rotationally symmetric body; self-consistent device simulator; stationary Schrodinger equation; thermionic emission model; thermodynamic model; two-dimensional device simulation; vectorial electromagnetic wave equation; vertical-cavity surface-emitting lasers; Electromagnetic scattering; Electron optics; Electrothermal effects; Nonlinear equations; Nonlinear optics; Optical design; Optical scattering; Optical surface waves; Stimulated emission; Vertical cavity surface emitting lasers;
fLanguage :
English
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
1077-260X
Type :
jour
DOI :
10.1109/JSTQE.2003.818858
Filename :
1250491
Link To Document :
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