Title :
Broadband Phase-to-Intensity Modulation Conversion for Microwave Photonics Processing Using Brillouin-Assisted Carrier Phase Shift
Author :
Li, Wei ; Zhu, Ning Hua ; Wang, Li Xian ; Wang, Hui
Author_Institution :
State Key Lab. on Integrated Optoelectron., Inst. of Semicond., Beijing, China
Abstract :
We theoretically and experimentally demonstrate a novel broadband phase-to-intensity modulation conversion technique for microwave photonics processing system. The technique is based on optical carrier phase shift of a phase modulated signal using stimulated Brillouin scattering. More than 360 ° carrier phase shift can be achieved. By simply adjusting the carrier phase shift while preserving its amplitude unchanged, the phase modulation can be fully or partially converted to intensity modulation. The main advantage of the proposed method lies in its broadband nature since the SBS is only imparted on the optical carrier and the phase modulated sidebands are not affected as long as the modulating frequency is higher than the Brillouin bandwidth. In addition, as a microwave photonics processing application, we demonstrate the dispersion induced power penalty control in radio-over-fiber systems using the proposed technique. Experimental results match well with the theoretical prediction.
Keywords :
frequency modulation; intensity modulation; microwave photonics; optical fibre dispersion; optical frequency conversion; optical modulation; optical phase shifters; phase modulation; radio-over-fibre; stimulated Brillouin scattering; Brillouin bandwidth; Brillouin-assisted carrier phase shift; amplitude modulation; broadband phase-to-intensity modulation conversion; dispersion induced power penalty; frequency modulation; microwave photonics; optical carrier; phase modulated sidebands; phase modulated signal; radio-over-fiber systems; stimulated Brillouin scattering; Optical fibers; Optical filters; Optical modulation; Optical pumping; Phase modulation; Scattering; Phase-to-intensity modulation conversion; radio-over-fiber; stimulated Brillouin scattering;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2011.2173462