Title :
Theoretical design optimization of multiple-quantum-well electroabsorption waveguide modulators
Author :
Chin, Mee K. ; Chang, William S C
Author_Institution :
Dept. of Electr. & Comput. Eng., California Univ., San Diego, La Jolla, CA, USA
fDate :
9/1/1993 12:00:00 AM
Abstract :
Optical on-off modulators require low insertion loss, high contrast ratio (CR), small drive power and large bandwidth or bit-rate. A systematic approach to optimize the total performance of these modulators based on the quantum-confined Stark effect is presented here. The approach consists of minimizing the power/bandwidth ratio while satisfying a given CR and insertion loss. Our design consists of a large-core multimode passive waveguide with a thin buried active layer. The passive waveguide is designed to yield a high coupling efficiency to conventional single-mode fibers. The quantum well material structure is designed to maximize Δα/ΔF2, while maintaining a sufficiently large Δα/α0, where Δα is the absorption change, α0 is the residual absorption at zero bias, and ΔF is the swing of the applied electric field. Our theoretical model shows that i) wider quantum wells give larger Δα/ΔF2, and ii) the bandwidth/power ratio as high as 4 GHz/mW can be achieved simultaneously with small insertion loss, For example, with a drive voltage of 3 V, an RC limited bandwidth as high as 60 GHz is predicted, while a contrast ratio of 20 dB and a total insertion loss of 4.5 dB may also be obtained
Keywords :
Stark effect; electro-optical devices; electroabsorption; integrated optics; optical design techniques; optical losses; optical modulation; optical waveguide theory; optimisation; semiconductor quantum wells; 3 V; 4.5 dB; absorption change; applied electric field; bit-rate; fibre couplers; high contrast ratio; high coupling efficiency; insertion loss; large bandwidth; large-core multimode passive waveguide; low insertion loss; multiple-quantum-well electroabsorption waveguide modulators; optical on-off modulators; power/bandwidth ratio; quantum-confined Stark effect; residual absorption; single-mode fibers; small drive power; systematic approach; theoretical design optimization; thin buried active layer; total performance; zero bias; Absorption; Bandwidth; Chromium; Design optimization; Insertion loss; Optical losses; Optical modulation; Optical waveguides; Quantum well devices; Stark effect;
Journal_Title :
Quantum Electronics, IEEE Journal of