Geng Lijie, Zhang Ruiliang, Yan Pengji, Qu Yanchen, Ji Zhikun, Zhai Yusheng, Zhao Weijiang, Zhang Zhifeng, Zhang Wenyan, Yang Kun
Opt Express. 2022 Oct 24;30(22):39961-39975. doi: 10.1364/OE.470793.
Optically pumped gas molecular terahertz (THz) lasers are promising for generating high-power and high-beam-quality coherent THz radiation. However, for pulsed gas THz lasers, the temporal behavior of the output THz pulse has rarely been investigated. In this study, the temporal behavior of a pulsed gas THz pumped by a fundamental-mode TEA CO laser has been presented for the first time both in simulation and experiment. A modified laser kinetics model based on the density matrix rate equation was used to simulate the temporal behavior and output pulse energy of a pulsed gas THz laser at different gas pressures. The results clearly show that the working gas pressure and pump pulse energy have critical influences on the output THz pulse shape. Three typical pulse shapes were obtained, and the THz pulse splitting caused by gain switching was quantitatively simulated and explained based on the laser dynamic process. Besides, with an incident pump pulse energy of 342 mJ, the maximum output THz pulse energy of 2.31 mJ was obtained at 385 µm, which corresponds to a photon conversion efficiency of approximately 56.1%, and to our knowledge, this is the highest efficiency for DO gas THz laser. The experimental results agreed well with those of the numerical simulation for the entire working gas pressure range, indicating that our model is a powerful tool and paves the way for designing and optimizing high-power pulsed gas lasers.
光泵浦气体分子太赫兹(THz)激光器在产生高功率、高光束质量的相干太赫兹辐射方面具有广阔前景。然而,对于脉冲气体太赫兹激光器,输出太赫兹脉冲的时间特性却鲜有研究。在本研究中,首次在模拟和实验中展现了由基模TEA CO激光器泵浦的脉冲气体太赫兹激光器的时间特性。基于密度矩阵速率方程的改进激光动力学模型被用于模拟不同气体压力下脉冲气体太赫兹激光器的时间特性和输出脉冲能量。结果清晰表明工作气体压力和泵浦脉冲能量对输出太赫兹脉冲形状有至关重要的影响。获得了三种典型的脉冲形状,并基于激光动力学过程对增益开关引起的太赫兹脉冲分裂进行了定量模拟和解释。此外,在385 µm波长处,当入射泵浦脉冲能量为342 mJ时,获得了2.31 mJ的最大输出太赫兹脉冲能量,对应的光子转换效率约为56.1%,据我们所知,这是DO气体太赫兹激光器的最高效率。在整个工作气体压力范围内,实验结果与数值模拟结果吻合良好,表明我们的模型是一个强大的工具,为设计和优化高功率脉冲气体激光器铺平了道路。