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用于731 nm光参量振荡器泵浦的高功率单频激光器(特邀)

High-Power Single-Frequency Laser for 731 nm Optical Parametric Oscillator Pumping(Invited)

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【作者】 赵肖男孙新会刘盼陈金信尚林浩吴亚军陈曦程刚高慧慧付毅宾范广强张天舒刘文清

【Author】 Zhao Xiaonan;Sun Xinhui;Liu Pan;Chen Jinxin;Shang Linhao;Wu Yajun;Chen Xi;Cheng Gang;Gao Huihui;Fu Yibin;Fan Guangqiang;Zhang Tianshu;Liu Wenqing;Science Island Branch, Graduate School of University of Science and Technology of China;Anhui Institute of Optics and Fine Mechanics, Hefei Institutes of Physical Science, Chinese Academy of Sciences;Institute of Environment Hefei Comprehensive National Science Center;

【通讯作者】 张天舒;

【机构】 中国科学技术大学研究生院科学岛分院中国科学院合肥物质研究院安徽光学精密机械研究所合肥综合性国家科学中心环境研究院

【摘要】 高功率单频连续激光器作为光参量振荡器的核心泵浦源,在激光雷达探测、量子通信及精密测量等领域中具有重要价值。然而,传统固体单频激光器在实现高功率单频输出时面临热透镜效应和多模竞争等关键问题。提出一种可用于输出731 nm光参量振荡器泵浦的高功率单频连续Innoslab激光器。通过基于板条状Nd∶YVO4激光晶体的Innoslab放大器,可将2 W的单频连续种子光放大至20 W。基于傅里叶变换的4f成像原理及对激光晶体热效应的多维度分析,实现了Innoslab放大器的球差自在现。放大前后的光束质量基本保持不变,这为OHx自由基激光雷达探测提供了新的光参量振荡泵浦源。

【Abstract】 Objective OHx free radical LIDAR detection usually requires a single-frequency ultraviolet wavelength, such as 308 nm, and an optical parametric oscillator(OPO) is one of the main devices to achieve nonlinear frequency conversion. However, most traditional OPOs use wide linewidth or multi-mode lasers as pump sources, which leads to problems such as high phase noise and low spectral purity of the final output laser and limits the application of OPOs in high-precision spectral detection and quantum optics. In addition, increasing the power of single-frequency lasers faces challenges such as nonlinear effects and thermal effects in laser gain media. Therefore, it is essential to use a high-quality and high-power single-frequency pump source for pumping OPOs. In this paper, based on the efficient one-dimensional heat dissipation characteristics and spherical aberration self-compensation technology of Innoslab, we designed the Innoslab amplifier to increase the single-frequency power while keeping the beam quality unchanged, providing a good pump source for OPOs.Methods The thermal effect of the laser crystal is essential to the design of the Innoslab laser amplifier. We first used finite element analysis to simulate the multi-dimensional thermal effects of the laser crystal and explored the temperature distribution and thermal stress distribution of the laser crystal from each dimension. Then, we investigated whether Nd∶YVO4 would undergo thermally induced stress fracture at the theoretical pump power and determined the focal length of the thermal lens of the laser amplifier at the same theoretical pump power. Another key design factor of the Innoslab laser amplifier was the pattern matching between the seed light and the pump light. For the known pump light size, we used multiple cylindrical lenses to flexibly shape the dimensions of the seed light along the fast axis and slow axis directions to match the pump spot. In addition, while realizing the high-power single-frequency laser output, we should also avoid the deterioration of beam quality caused by the thermally induced spherical aberration effect. Therefore, we designed spherical aberration self-compensation structure based on the principle of the Fourier transform 4f imaging system.Results and Discussions Through finite element analysis and simulation, the temperature distribution and multi-dimensional thermal stress distribution of the laser crystal are clarified, and the focal length of the thermal lens is further determined. We numerically determine the thermal effect of the laser crystal accurately and provide theoretical support for the design of the Innoslab laser amplifier(Fig. 3 and Fig. 4). Thermally induced spherical aberration has always been a key factor affecting the performance of Innoslab laser amplifier. The realization principle of spherical aberration self-compensation is explained from the perspective of the 4f imaging system based on Fourier optics(Fig. 5), and the beam quality before and after amplification remains the same. The design of the Innoslab laser amplifier requires that when the seed light passes through the laser crystal multiple times, its size in the fast axis direction remains unchanged, and its size in the the slow axis direction increases evenly. This purpose is achieved through the flexible design of the magnifying endpump and multiple cylindrical lenses(Fig. 7). The engineered Innoslab laser amplifier designed has been operating continuously and stably for several months(Fig. 10).Conclusions The proposed high-power single-frequency laser is successfully applied to the OHx free radical LIDAR light source, and the pumped OPO module successfully outputs a 731 nm laser, which provides the basis for subsequent nonlinear frequency conversion. Compared with previous laser amplifiers, the principle of spherical aberration self-compensation is theoretically explained, ensuring that the beam quality before and after laser amplification is unchanged. In addition, the designed Innoslab laser amplifier has been applied in engineering and exhibits stability. So far, it has been operating stably for several months.

【基金】 国家重点研发计划项目(2022YFB2602002)
  • 【文献出处】 光学学报 ,Acta Optica Sinica , 编辑部邮箱 ,2025年18期
  • 【分类号】TN753.91;TN248
  • 【下载频次】95
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