Title :
Optical circuits for equalizing group delay dispersion of optical fibers
Author :
Sharma, Manish ; Ibe, Hiroyuki ; Ozeki, Takeshi
Author_Institution :
Inf. and Commun. Syst. Labs., Toshiba Corp., Tokyo, Japan
fDate :
10/1/1994 12:00:00 AM
Abstract :
Optical circuits are synthesized for equalizing the group delay dispersion of single-mode fibers. The transfer function of the equalizing circuits are given by Chebyshev polynomials of the second kind. The various realization methods for the group delay equalizer are shown, including periodic structures using birefringent crystals, birefringent fibers, and Mach-Zehnder interferometric planar optical circuits. An optical equalizer employing TiO2 birefringent crystals was fabricated and evaluated by using an optical network analyzer, which operates by making modulation-envelope phase and amplitude measurements while scanning the optical carrier frequency. The measured optical equalizer characteristics show excellent agreement with the simulation analysis. The effectiveness of the equalizer for substantial reduction of the dispersion penalty for a 10 Gb/s signal transmitted over 30 km of normal dispersion fiber was demonstrated. The periodicity of the equalizer results in periodic dispersion-free bands, and hence, the equalizer is suitable for use in future multichannel FDM systems
Keywords :
birefringence; frequency division multiplexing; integrated optics; light interferometers; optical communication equipment; optical dispersion; optical fibres; optical modulation; optical waveguides; polynomials; 10 Gbit/s; Chebyshev polynomials; Mach-Zehnder interferometric planar optical circuits; TiO2; TiO2 birefringent crystals; birefringent crystals; birefringent fibers; dispersion penalty; equalizing circuits; group delay dispersion; group delay dispersion equilisation; modulation-envelope amplitude measurements; modulation-envelope phase measurements; normal dispersion fiber; optical carrier frequency scanning; optical circuits; optical equalizer characteristics; optical fibers; optical network analyzer; periodic dispersion-free bands; periodic structures; simulation analysis; single-mode fibers; transfer function; Birefringence; Circuit synthesis; Crystals; Delay; Dispersion; Equalizers; Optical fiber networks; Optical interferometry; Optical modulation; Transfer functions;
Journal_Title :
Lightwave Technology, Journal of