Ultra-compact Q-switched eye-safe glass laser

Wei Wang, Yong Wang, Siwei Zhang
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Abstract

Er,Yb co-doped glass has been widely used to generate 1.5-μm Q-switched pulsed lasers, which are in strong demands for such applications as remote sensing telemetry, LiDAR and imaging. Aiming to meet such demands, we developed a ultra-compact and lightweight diode-pumped solid-state laser, which can achieve a Q-switched pulse energy of 1.5 mJ at an eye-safe wavelength of 1534-nm with an optical conversion efficiency of 3.4% under pump power of 22 W in the operating frequency range of 1-10 Hz. In the experiment, a 940-nm semiconductor laser was used to pump an Er,Yb co-doped glass with a saturable absorber (Co2+:Spinel) to realize Q switching. A theoretical model was then developed to simulate and characterize the Er,Yb co-doped glass laser. The model takes into account not only the excited state absorption and up-conversion effects, but also the thermal effects on the laser. The simulation results are in high agreement with the experimental ones.
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超紧凑型调q安全玻璃激光器
铒镱共掺玻璃已被广泛用于制备1.5 μm调q脉冲激光器,在遥感遥测、激光雷达和成像等领域有着广泛的应用需求。为了满足这一需求,我们开发了一种超紧凑轻量级的二极管泵浦固体激光器,在1-10 Hz的工作频率范围内,泵浦功率为22 W,在人眼安全波长1534 nm处实现了1.5 mJ的调q脉冲能量,光转换效率为3.4%。在实验中,利用940 nm半导体激光器泵浦具有可饱和吸收剂(Co2+:尖晶石)的Er,Yb共掺杂玻璃,实现Q开关。然后建立了一个理论模型来模拟和表征铒镱共掺玻璃激光器。该模型不仅考虑了激发态吸收和上转换效应,还考虑了热效应对激光的影响。仿真结果与实验结果吻合较好。
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