Title :
A Versatile Model for Temperature-Dependent Effects in Tm-Doped Silica Fiber Lasers
Author :
Chongyuan Huang ; Yulong Tang ; Hongqiang Li ; Yao Wang ; Jianqiu Xu ; Cheng Du
Author_Institution :
Dept. of Phys., Shanghai Jiao Tong Univ., Shanghai, China
Abstract :
We have derived a model to provide a unique insight into the temperature-dependent effects in Tm-doped silica fiber lasers with consideration of important energy transfer processes and full spectra of laser transition. By fitting experimental measurements, the dependence of emission and absorption cross sections on temperature was characterized. With careful thermal management to control the influence of thermomechanical and thermooptical effects, a good agreement was achieved between simulations and experiments, even in the kilowatt power domain. On the basis of the model, the investigation shows that the thermal distribution of ions over the Stark sublevels contributes a higher threshold and a lower laser power as the temperature increase. Fortunately, this degradation of laser performance can be largely weakened when higher pump intensity is employed. The simulations also show that lower output coupling and longer operational wavelength can mitigate the output power variation arising from the temperature. The model was further used to analyze the dependence of laser spectrum on the fiber length and pump power when temperature changes. In addition, the laser output power and temperature distribution in kW-level are also studied.
Keywords :
Stark effect; fibre lasers; laser beams; optical pumping; silicon compounds; temperature distribution; thermo-optical devices; thermo-optical effects; thulium; Stark sublevels; Tm-doped silica fiber lasers; absorption cross section; emission dependence; energy transfer processes; fiber length; ion thermal distribution; kW-level; kilowatt power domain; laser output power; laser performance degradation; laser power; laser spectrum dependence; laser transition full spectra; longer operational wavelength; lower output coupling; output power variation; pump intensity; pump power; temperature distribution; temperature-dependent effects; thermal management; thermomechanical effects; thermooptical effects; versatile model; Fiber lasers; Laser excitation; Laser modes; Measurement by laser beam; Optical fiber couplers; Pump lasers; Temperature measurement; Modeling; numerical analysis; optical fiber lasers; temperature; thermal factors; thulium;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2013.2283294