Title :
Gamma and proton radiation effects in erbium-doped fiber amplifiers: active and passive measurements
Author :
Rose, Todd S. ; Gunn, Deana ; Valley, George C.
Author_Institution :
Photonics Technol. Dept., Aerosp. Corp., El Segundo, CA, USA
fDate :
12/1/2001 12:00:00 AM
Abstract :
Commercially available Er-doped fibers were irradiated with 5.6 and 28 MeV protons and 60Co gamma rays, up to levels of 50 krad. White-light transmission spectra under passive conditions (no pump or signal) were measured at several radiation levels for the six types of fibers that were tested. The spectra were used to evaluate the relative radiation sensitivity of the fibers and compare gamma versus proton-induced damage for two fiber types. The amount of radiation damage for the fibers was observed to scale inversely with the Ge concentration. Samples from three of the fiber types were configured as optical amplifiers using 980-nm and 1550-nm pump and input signals. In situ measurements of the gain, noise figure, and amplified spontaneous emission (ASE) were made as a function of pump power at several levels of radiation. A computer code, based on a conventional Er-doped fiber amplifier (EDFA) model, was written to simulate performance, using input data provided by the fiber vendor and anchored to measurements made prior to radiation. A comparison between the simulations and experimental data shows that, in certain fibers where the damage is significant, the radiation-induced loss determined from amplifier measurements can be substantially less than that determined from passive transmission spectra
Keywords :
erbium; gamma-ray effects; light transmission; optical engineering computing; optical fibre amplifiers; optical fibre testing; optical noise; optical pumping; proton effects; superradiance; 1550 nm; 28 MeV; 5.6 MeV; 50 krad; 980 nm; 60Co gamma ray irradiation; ASE; Co; EDFA model; Er-doped fiber amplifier model; Er-doped fibers; Ge; Ge concentration; active measurements; amplified spontaneous emission; amplifier measurements; computer code; erbium-doped fiber amplifiers; fiber measurements; fiber optical amplifiers; fiber testing; gain; gamma radiation effects; gamma-induced damage; gamma-ray effects; in situ measurements; input signals; noise figure; passive measurements; passive transmission spectra; proton irradiation; proton radiation effects; proton-induced damage; pump power; pump signals; radiation damage; radiation levels; radiation-induced loss; relative radiation sensitivity; white-light transmission spectra; Computational modeling; Erbium-doped fiber amplifier; Gamma rays; Optical fiber amplifiers; Optical fiber testing; Optical noise; Optical pumping; Optical sensors; Proton radiation effects; Stimulated emission;
Journal_Title :
Lightwave Technology, Journal of