Field mappers for laser material processing

SPIE LASE Pub Date : 2016-04-22 DOI:10.1117/12.2213481
P. Blair, M. Currie, N. Trela, H. Baker, E. Murphy, D. Walker, R. McBride
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引用次数: 3

Abstract

The native shape of the single-mode laser beam used for high power material processing applications is circular with a Gaussian intensity profile. Manufacturers are now demanding the ability to transform the intensity profile and shape to be compatible with a new generation of advanced processing applications that require much higher precision and control. We describe the design, fabrication and application of a dual-optic, beam-shaping system for single-mode laser sources, that transforms a Gaussian laser beam by remapping – hence field mapping - the intensity profile to create a wide variety of spot shapes including discs, donuts, XY separable and rotationally symmetric. The pair of optics transform the intensity distribution and subsequently flatten the phase of the beam, with spot sizes and depth of focus close to that of a diffraction limited beam. The field mapping approach to beam-shaping is a refractive solution that does not add speckle to the beam, making it ideal for use with single mode laser sources, moving beyond the limits of conventional field mapping in terms of spot size and achievable shapes. We describe a manufacturing process for refractive optics in fused silica that uses a freeform direct-write process that is especially suited for the fabrication of this type of freeform optic. The beam-shaper described above was manufactured in conventional UV-fused silica using this process. The fabrication process generates a smooth surface (<1nm RMS), leading to laser damage thresholds of greater than 100J/cm2, which is well matched to high power laser sources. Experimental verification of the dual-optic filed mapper is presented.
激光材料加工现场绘图机
用于高功率材料加工应用的单模激光束的固有形状是具有高斯强度分布的圆形。制造商现在要求能够转换强度轮廓和形状,以与需要更高精度和控制的新一代先进加工应用兼容。我们描述了单模激光源的双光,光束整形系统的设计,制造和应用,该系统通过重新映射-因此场映射-强度剖面来变换高斯激光束,以创建各种各样的光斑形状,包括圆盘,甜甜圈,XY可分离和旋转对称。这对光学元件改变了光束的强度分布,从而使光束的相位变平,光斑大小和聚焦深度接近于衍射限制光束。光束整形的场映射方法是一种折射率解决方案,不会增加光束的散斑,使其成为单模激光源的理想选择,在光斑大小和可实现的形状方面超越了传统场映射的限制。我们描述了一种在熔融二氧化硅中使用自由形式直接写入工艺的折射光学器件的制造工艺,该工艺特别适合于制造这种类型的自由形式光学器件。上述光束成形器是在传统的紫外熔融二氧化硅中使用该工艺制造的。制造过程产生光滑的表面(RMS <1nm),导致激光损伤阈值大于100J/cm2,与高功率激光源很好地匹配。给出了双光场成像仪的实验验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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