Title :
Overcoming Tap-Delay-Variation Induced Distortion in Microwave Photonic Filters
Author :
Yi, Xiaoke ; Huang, Thomas X H ; Li, Liwei ; Minasian, Robert A.
Author_Institution :
Inst. of Photonics & Opt. Sci., Univ. of Sydney, Sydney, NSW, Australia
fDate :
4/15/2012 12:00:00 AM
Abstract :
A new technique to realize a multiple-tap microwave photonic Alter that is free of the limitations of tap-delay-variation induced Alter distortion, which enables it to operate at high microwave frequencies, is presented. It is based on a technique using a wideband high-order dispersion compensator to cancel the group delay variations of the primary optical fiber dispersive delay line. The compensator, implemented using a programmable Fourier-domain dynamic wavelength processor incorporating liquid crystal on silicon pixels, provides a tailored optical phase profile to effectively cancel out the tap-delay variations originating from the primary fiber delay line. Experimental results verify the new technique and demonstrate a 20-tap microwave photonic bandpass filter obtained using a multi-frequency laser source with equally spaced lines, which operates to 20 GHz without any radio frequency distortion.
Keywords :
band-pass filters; compensation; liquid crystal on silicon; microwave filters; microwave photonics; optical delay lines; optical fibre dispersion; frequency 20 GHz; group delay variations; liquid crystal on silicon; microwave photonic bandpass filter; multifrequency laser source; optical fiber dispersive delay line; optical phase profile; programmable Fourier-domain dynamic wavelength processor; tap-delay-variation induced distortion; wideband high-order dispersion compensator; Band pass filters; Finite impulse response filter; Microwave filters; Optical distortion; Optical fiber dispersion; Optical fiber filters; Optical fibers; Microwave filters; microwave photonics; optical delay lines; photonic signal processing;
Journal_Title :
Photonics Technology Letters, IEEE
DOI :
10.1109/LPT.2012.2186797