Title :
Mach-Zehnder modulators and optical switches on III-V semiconductors
Author :
Erman, Maria ; Jarry, P. ; Gamonal, R. ; Autier, Philippe ; Chané, Jean-Paul ; Frijlink, Peter
Author_Institution :
Lab. d´´Electron. et de Phys. Appliquee, Limeil Brevannes, France
fDate :
6/1/1988 12:00:00 AM
Abstract :
Key components of interferometric structures, i.e., phase modulators and beamsplitters, as well as a Mach-Zehnder modulator are investigated. Inverted rib waveguide phase modulators have been fabricated using vapor phase epitaxy (GaAs and InP homostructures) or a combination of vapor phase epitaxy and metal-organic vapor phase epitaxy (GaAlAs/GaAs double heterostructure). Two different beamsplitters, the three-guide coupler and the etched semitransparent mirror, have been studied both experimentally and theoretically. Experimental results have been obtained by fabricating semitransparent mirrors with the reactive ion etching. Using the three guide coupler, a GaAs homostructure Mach-Zehnder modulator has been realized. The required switching voltage is -14 V for 6-mm-long electrode and a crosstalk of 18 dB has been measured. The use of the semitransparent mirror for Mach-Zehnder interferometers is also discussed. In order to minimize the diffraction losses, the use of higher order waveguides, rather than single-mode waveguide looks promising
Keywords :
III-V semiconductors; electro-optical devices; integrated optics; light interferometers; optical communication equipment; optical elements; optical modulation; semiconductor epitaxial layers; switches; vapour phase epitaxial growth; 14 V; 6 mm; GaAlAs-GaAs; GaAs; III-V semiconductors; InP; Mach-Zehnder modulators; beamsplitters; etched semitransparent mirror; metal-organic vapor phase epitaxy; optical switches; phase modulators; reactive ion etching; three-guide coupler; vapor phase epitaxy; Epitaxial growth; Etching; Gallium arsenide; III-V semiconductor materials; Mirrors; Optical interferometry; Optical switches; Optical waveguide theory; Optical waveguides; Phase modulation;
Journal_Title :
Lightwave Technology, Journal of