Title :
Compact electro-optic polarization scramblers for optically amplified lightwave systems
Author_Institution :
Lucent Technol., Holmdel, NJ, USA
fDate :
8/1/1996 12:00:00 AM
Abstract :
Fast polarization scramblers have become important components in optically amplified transoceanic communication systems to eliminate anisotropic gain saturation (polarization hole burning) in the erbium-doped fiber amplifiers by depolarizing the launched optical carrier. This paper reviews the operation and implementation of compact electro-optic polarization scramblers on x-cut and z-cut lithium niobate. These integrated-optic devices employ low-loss single-mode waveguides and allow polarization modulation at variable frequencies ranging from a few 100 Hz to more than 10 GHz. We describe simple linear phase retarders that depolarize light in a fixed, well-maintained polarization state as well as cascaded multi-stage scramblers that are capable of depolarizing arbitrarily polarized light. These scramblers can be operated over a broad optical bandwidth of more than 40 nm with less than 5% residual degree of polarization and are further wavelength-tunable over more than 100 nm
Keywords :
electro-optical devices; integrated optics; optical communication equipment; optical hole burning; optical polarisers; optical waveguides; reviews; tuning; 100 Hz to 10 GHz; LiNbO3; anisotropic gain saturation; broad optical bandwidth; cascaded multi-stage scrambler; compact electro-optic polarization scramblers; depolarize light; erbium-doped fiber amplifiers; fast polarization scramblers; integrated-optic devices; launched optical carrier depolarisation; linear phase retarders; lithium niobate; low-loss single-mode waveguides; optically amplified lightwave systems; optically amplified transoceanic communication systems; polarization hole burning; polarization modulation; variable frequencies; wavelength-tunable; Anisotropic magnetoresistance; Erbium-doped fiber amplifier; Geometrical optics; Optical devices; Optical fiber polarization; Optical polarization; Optical retarders; Optical saturation; Optical waveguides; Stimulated emission;
Journal_Title :
Lightwave Technology, Journal of