DocumentCode :
3186530
Title :
Field theory analysis of distributed microwave effects in high speed semiconductor lasers and their interconnection with passive microwave transmission lines
Author :
Vahldieck, R. ; Shuoqi Chen ; Hang Jin ; Russer, Peter
Author_Institution :
Lab. for Lightwave Electron., Microwaves & Commun., Victoria Univ., BC, Canada
fYear :
1995
fDate :
16-20 May 1995
Firstpage :
861
Abstract :
This paper present a rigorous field theory analysis of the distributed microwave effects in high speed semiconductor lasers by using a combination of a self-consistent complex finite difference method with the frequency-domain TLM method (FDTLM). The semiconductor laser is treated as a lossy multilayer slow-wave microstrip transmission line. The conductivity profile in the active layer is obtained by a self-consistent solution of the nonlinear semiconductor device equations. The attenuation factor, phase velocity and characteristic impedance of the semiconductor laser are presented for the unbiased and forward-biased case and compared with experimental results. On the basis of this analysis we present the interconnection effects between passive microwave transmission lines and laser diodes using airbridge or flip-chip transitions.<>
Keywords :
coplanar waveguides; electric impedance; electromagnetic field theory; finite difference methods; flip-chip devices; frequency-domain analysis; laser theory; microstrip lines; semiconductor lasers; transmission line matrix methods; FDTLM; airbridge transitions; attenuation factor; characteristic impedance; conductivity profile; distributed microwave effects; field theory analysis; finite difference method; flip-chip transitions; frequency-domain TLM method; high speed semiconductor lasers; interconnection; lossy multilayer slow-wave microstrip transmission line; nonlinear semiconductor device equations; passive microwave transmission lines; phase velocity; Finite difference methods; Frequency domain analysis; Laser theory; Masers; Microstrip; Microwave theory and techniques; Nonhomogeneous media; Propagation losses; Semiconductor lasers; Transmission line theory;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Microwave Symposium Digest, 1995., IEEE MTT-S International
Conference_Location :
Orlando, FL, USA
ISSN :
0149-645X
Print_ISBN :
0-7803-2581-8
Type :
conf
DOI :
10.1109/MWSYM.1995.405911
Filename :
405911
Link To Document :
بازگشت