Title :
Theoretical and Experimental Study on High Peak Power Sub-Nanosecond Pulse Characteristics of Multi-Segment Composite Nd:YVO4 Laser
Author :
Shixia Li ; Guiqiu Li ; Shengzhi Zhao ; Xiaomei Wang
Author_Institution :
Shandong Provincial Key Lab. of Laser Technol. & Applic., Shandong Univ., Jinan, China
Abstract :
By simultaneously employing electro-optic modulator and GaAs, the dual-loss-modulated Q-switched and mode-locked sub-nanosecond laser of the multi-segment composite Nd:YVO4/Nd:YVO4/Nd:YVO4 crystal was investigated for the first time. The threshold pump power for obtaining the single mode-locking sub-nanosecond pulses was 5.72 W. When the incident pump power was 8.76 W, the maximal average output power of 885 mW and the shortest pulse duration of 489 ps were generated at 1 kHz repetition rate, corresponding to the highest peak power of 1.8 MW. Compared with the conventional Nd:YVO4 crystal, the multi-segment composite one depicted better thermomechanical performance and obtained much higher peak power. Coupled rate equations are brought in to theoretically analyze the experimental results, in which a hyperbolic secant square function and the Gaussian distribution of the intracavity photon density are considered. The simulated calculations are in accordance with the experimental results.
Keywords :
III-V semiconductors; Q-switching; electro-optical modulation; gallium arsenide; laser cavity resonators; laser mode locking; neodymium; optical losses; optical pulse generation; optical pumping; solid lasers; yttrium compounds; GaAs; Gaussian distribution; YVO4:Nd-YVO4:Nd; coupled rate equations; dual-loss-modulated Q-switched laser; electro-optic modulator; high peak power sub-nanosecond pulse; hyperbolic secant square function; intracavity photon density; mode-locked sub-nanosecond laser; multisegment composite crystal; multisegment composite laser; output power; power 1.8 MW; power 5.72 W; power 8.76 W; power 885 W; single mode-locking sub-nanosecond pulses; thermomechanical performance; threshold pump power; time 489 ps; Cavity resonators; Crystals; Gallium arsenide; Laser excitation; Mathematical model; Power generation; Thermal lensing; Dual-loss-modulation; multi-segment composite Nd:YVO4 crystal; rate equation; sub-nanosecond laser;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2015.2493513