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Beam shaping by using small-aperture SLM and DM in a high power laser

机译:在高功率激光器中使用小孔径SLM和DM光束整形

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High-power laser plays an important role in many fields, such as directed energy weapon, optoelectronic contermeasures, inertial confinement fusion, industrial processing and scientific research. The uniform nearfield and wavefront are the important part of the beam quality for high power lasers, which is conducive to maintaining the high spatial beam quality in propagation. We demonstrate experimentally that the spatial intensity and wavefront distribution at the output is well compensated in the complex high-power solid-state laser system by using the small-aperture spatial light modulator (SLM) and deformable mirror (DM) in the front stage. The experimental setup is a hundred-Joule-level Nd:glass laser system operating at three wavelengths at 1053 nm (1ω), 527 nm (2ω) and 351 nm (3ω) with 3 ns pulse duration with the final output beam aperture of 60 mm. While the clear arperture of the electrically addressable SLM is less than 20 mm and the effective diameter of the 52-actuators DM is about 15 mm. In the beam shaping system, the key point is that the two front-stage beam shaping devices needs to precompensate the gain nonuniform and wavefront distortion of the laser system. The details of the iterative algorithm for improving the beam quality are presented. Experimental results show that output nearfield and wavefont are both nearly flat-topped with the nearfield modulation of 1.26:1 and wavefront peak-to-valley value of 0.29 λ at 1053nm after beam shaping.
机译:高功率激光在许多领域起着重要作用,例如定向的能量武器,光电孔节油,惯性监禁融合,工业加工和科学研究。均匀的近场和波前是高功率激光器光束质量的重要部分,这有利于维持传播中的高空间梁质量。我们通过在前阶段中使用小孔径空间光调制器(SLM)和可变形镜(DM)在复杂的高功率固态激光系统中,在实验上示出了输出的空间强度和波前分布在前级中的小孔隙空间光调制器(SLM)和可变形镜(DM)在复杂的高功率固态激光系统中得到良好的补偿。实验设置是一百焦耳级ND:玻璃激光系统,在1053nm(1Ω),527nm(2Ω)和351nm(3Ω)的三个波长下,具有3 ns脉冲持续时间,最终输出光束孔径为60毫米。虽然可燃可燃SLM的透明arture小于20mm,并且52致动器DM的有效直径约为15mm。在光束整形系统中,关键点是两个前级光束整形装置需要将激光系统的增益不均匀和波前失真预称。提出了用于提高光束质量的迭代算法的细节。实验结果表明,在光束成型后,输出附近的菲尔德和波峰均与1.26:1的近场调制几乎是平顶的1.26:1,波前峰值值0.29λ,在梁相形后1053nm。

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