Title :
Electro-optical Michelson interferometer using low coherence fiber optics
Author :
Nguyen, Lim ; Jiang, Ruixiang ; Wolfe, Kyle W.
Author_Institution :
Peter Kiewit Inst. of Inf. Sci., Technol. & Eng., Nebraska Univ., Lincoln, NE, USA
Abstract :
We propose a novel application of superfluorescent fiber, or erbium doped fiber amplifier (EDFA), light sources (SFS) for radar systems. The ultra-wide band noise coupled with the use of optical fiber delay lines makes SFS ideally suited for random noise radar applications. Optical fiber makes long and multiple-step delay lines of a few kilometers feasible. Its advantage includes being extremely low-loss, compact and light-weighted, and available at a much lower cost, while avoiding the dispersion and non-linearity associated with microwave delay lines. In our experiments, the erbium-doped fiber is pumped by a distributed feedback laser operating at 980 nm and generates broadband light at 1550 nm. This low coherence light source is employed in a novel microwave electro-optical Michelson interferometer arrangement to demonstrate the feasibility of the radar application. We report the theoretical analysis and experimental results to characterize the resolution characteristics of the systems
Keywords :
Michelson interferometers; electro-optical devices; light coherence; light sources; microwave photonics; optical delay lines; optical fibre amplifiers; optical pumping; radar equipment; random noise; superradiance; 1550 nm; distributed feedback laser pumping; erbium doped fiber amplifier; light source; low coherence fiber optics; microwave electro-optical Michelson interferometer; optical fiber delay line; radar system; random noise; resolution; superfluorescent fiber; Delay lines; Distributed feedback devices; Doped fiber amplifiers; Erbium; Erbium-doped fiber amplifier; Light sources; Optical fibers; Optical interferometry; Optical noise; Radar applications;
Conference_Titel :
Microwave Conference, 2000 Asia-Pacific
Conference_Location :
Sydney, NSW
Print_ISBN :
0-7803-6435-X
DOI :
10.1109/APMC.2000.925893