Title :
Dispersion Engineered Capillary-Assisted Chalcogenide Optical Fiber Based Mid-IR Parametric Sources
Author :
Singh, S.P. ; Mishra, V. ; Datta, P.K. ; Varshney, S.K.
Author_Institution :
Dept. of Phys., Indian Inst. of Technol. Kharagpur, Kharagpur, India
Abstract :
We report the detailed theoretical investigations of a capillary-assisted chalcogenide optical fibers exhibiting three zero dispersion wavelengths and small magnitude of chromatic dispersion. The dispersion characteristics of the proposed fiber can be tailored externally by temperature when the air-capillary is infiltrated with suitable thermooptic liquids. This has led to design and development of thermally tunable broadband CW pumped optical parametric amplifier (OPA) in mid-IR region with bandwidth greater than 2000 nm. By considering the sixth-order dispersion parameter in the phase-matching condition, we have shown the temperature-dependent various phase-matching topologies which are only possible with different fiber structures as reported earlier. The key benefits of the proposed tunable OPA are the generation of new radiations of varying line widths.
Keywords :
chalcogenide glasses; optical design techniques; optical fibre dispersion; optical glass; optical parametric amplifiers; optical phase matching; optical pumping; optical tuning; thermo-optical devices; air-capillary; chromatic dispersion; dispersion characteristics; dispersion engineered capillary-assisted chalcogenide optical fiber; fiber structures; line widths; mid-IR parametric sources; mid-IR region; phase-matching condition; phase-matching topologies; sixth-order dispersion parameter; temperature-dependent; thermally tunable broadband CW pumped optical parametric amplifier design; thermally tunable broadband CW pumped optical parametric amplifier development; thermooptic liquids; tunable OPA; zero dispersion wavelengths; Frequency conversion; Gain; Optical fiber amplifiers; Optical fiber devices; Optical fiber dispersion; Capillary optical fiber; capillary optical fiber; chalcogenide glass; mid-IR sources; optical parametric amplifier;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2014.2371471