Title :
Polarization-independent acoustooptically tuned spectral filter with frequency shift compensation
Author :
Tarasov, Alexander A. ; Chu, Hong ; Jhon, Young Min
Author_Institution :
Inst. of Nucl. Problems, Minsk, Belarus
fDate :
7/1/2002 12:00:00 AM
Abstract :
A new polarization-independent tunable spectral filter based on the combination of a single isotropic acoustooptic cell and a pair of conventional diffraction gratings is suggested and investigated. The filter features narrow bandwidth, frequency shift compensation, and low polarization dependence. Using standard AMTIR-1 chalcogenide glass acoustooptic modulator with frequency 40-77 MHz and ruled diffraction gratings with 600 grooves/mm, a 3-dB bandwidth of 1.1 nm, and a tuning range of 16 nm were obtained. Tuning range can be increased by the use of acoustooptic cell with increased center frequency or diffraction grating of a lower dispersion. Inserting the filter inside a laser cavity, continuous-wave tunable generation of Er-doped fiber laser with maximum output power 3 mW was realized. When a Fabry-Perot etalon (0.166-nm free spectral range, 40% reflectance) was inserted into laser cavity, the linewidth was observed to be less than 0.05 nm.
Keywords :
Fabry-Perot interferometers; acousto-optical filters; acousto-optical modulation; compensation; diffraction gratings; laser cavity resonators; laser tuning; light polarisation; 40 to 77 MHz; AMTIR-1 chalcogenide glass acoustooptic modulator; CW tunable generation; Er-doped fiber laser; Fabry-Perot etalon; acoustooptic cell; diffraction grating; diffraction gratings; free spectral range; frequency shift compensation; increased center frequency; laser cavity; linewidth; low polarization dependence; lower dispersion; maximum output power; narrow bandwidth; polarization-independent acousto optically tuned spectral filter; reflectance; ruled diffraction gratings; single isotropic acoustooptic cell; tuning range; Bandwidth; Diffraction gratings; Fiber lasers; Filters; Frequency; Glass; Laser tuning; Polarization; Power generation; Tunable circuits and devices;
Journal_Title :
Photonics Technology Letters, IEEE
DOI :
10.1109/LPT.2002.1012393