陈晨, 许强, 孙锐, 张亚妮, 康翠萍, 张明霞, 袁振, 令维军. 调Q锁模运转的全固态Tm:LuAG陶瓷激光器[J]. 红外与激光工程, 2021, 50(4): 20190563. DOI: 10.3788/IRLA20190563
引用本文: 陈晨, 许强, 孙锐, 张亚妮, 康翠萍, 张明霞, 袁振, 令维军. 调Q锁模运转的全固态Tm:LuAG陶瓷激光器[J]. 红外与激光工程, 2021, 50(4): 20190563. DOI: 10.3788/IRLA20190563
Chen Chen, Xu Qiang, Sun Rui, Zhang Ya'ni, Kang Cuiping, Zhang Mingxia, Yuan Zhen, Ling Weijun. Q-switched mode-locked all-solid-state Tm:LuAG ceramic laser[J]. Infrared and Laser Engineering, 2021, 50(4): 20190563. DOI: 10.3788/IRLA20190563
Citation: Chen Chen, Xu Qiang, Sun Rui, Zhang Ya'ni, Kang Cuiping, Zhang Mingxia, Yuan Zhen, Ling Weijun. Q-switched mode-locked all-solid-state Tm:LuAG ceramic laser[J]. Infrared and Laser Engineering, 2021, 50(4): 20190563. DOI: 10.3788/IRLA20190563

调Q锁模运转的全固态Tm:LuAG陶瓷激光器

Q-switched mode-locked all-solid-state Tm:LuAG ceramic laser

  • 摘要: 采用垂直生长法制备的氧化石墨烯(Graphene oxide, GO)作为可饱和吸收体,利用典型“X”型折叠腔在全固态Tm:Lu3Al5O12(Tm:LuAG)陶瓷激光器中实现了调Q锁模运转。以790 nm激光二极管(Laser diode, LD)作为泵浦源,当泵浦功率大于8 W时,激光器进入稳定的调Q锁模状态。当输出镜透过率为5%时,连续光最高输出功率为714 mW,斜效率为4.94%。当泵浦达到16 W时,激光器最大输出功率为200 mW , 光谱中心波长为2024 nm,脉冲宽度约为695 ps,对应的锁模脉冲重复频率为108.7 MHz,调Q包络中锁模脉冲的调制深度接近100%。该2 μm超短脉冲激光器在生物医学和激光通讯等领域具有非常重要的应用。

     

    Abstract: Using graphene oxide (GO) by vertical growth method as saturable absorber, an all-solid-state Q-switched mode-locked Tm: Lu3Al5O12 (Tm: LuAG) ceramic laser with typical 'X' folded cavity was firstly demonstrated . A 790 nm laser diode (LD) was used as the pumping source. When the pumping power was greater than 8 W, the laser entered a stable Q-switched mode-locked state. When the output mirror was 5%, the maximum output power of continuous light was 714 mW, and the oblique efficiency was 4.94%. When the pumping power reached 16 W, the maximum output power of the laser was 200 mW, the corresponding repetition frequency of mode-locked pulse was 108.7 MHz, and the modulation depth of mode locked pulse in Q-switched envelope was close to 100%. The 2 μm ultrashort pulsed laser has important applications in biomedicine and laser communication.

     

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