Title :
Electrically tunable dispersion compensator with fixed center wavelength using fiber Bragg grating
Author :
Ngo, N.Q. ; Li, S.Y. ; Zheng, R.T. ; Tjin, S.C. ; Shum, P.
Author_Institution :
Sch. of Electr. & Electron. Eng., Nanyang Technol. Univ., Singapore, Singapore
fDate :
6/1/2003 12:00:00 AM
Abstract :
We present the design and development of a novel tunable dispersion compensator with fixed center wavelength that is based on the electrical adjustment of the chirp of a fiber Bragg grating (FBG). Both temperature gradient and strain gradient are employed to adjust the chirp of the FBG jointly. The electrical current flowing through the taper on-fiber thin-film heater will introduce a temperature gradient on the FBG. The shrinkage of a negative thermal expansion coefficient (NTEC) ceramic due to the temperature rise will compress the tapered FBG mounted inside it, and this will introduce a strain gradient on the FBG. The center wavelength of the FBG will be kept fixed because the effect of temperature rise on the FBG and the effect of compression of the FBG will offset each other. Applying an electrical power of less than 0.68 W, we demonstrate a linearly chirped FBG whose dispersion can be continuously adjusted from -178 ps/nm to -302 ps/nm with a central wavelength shift of as small as 0.16 nm.
Keywords :
Bragg gratings; chirp modulation; compensation; optical communication equipment; optical design techniques; optical fibre dispersion; optical modulation; thermal expansion; 0.68 W; continuously adjusted; electrical adjustment; electrical power; electrically tunable dispersion compensator; fiber Bragg grating chirp; fixed center wavelength; linearly chirped FBG; negative thermal expansion coefficient; optical fibre dispersion; strain gradient; taper on-fiber thin-film heater; tapered FBG compression; temperature gradient; temperature rise; tunable dispersion compensator; Bragg gratings; Capacitive sensors; Chirp; Fiber gratings; Fiber nonlinear optics; High speed optical techniques; Optical fiber polarization; Resistance heating; Temperature; Transistors;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2003.812153