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Advanced laser scanning for highly-efficient ablation and ultrafast surface structuring: experiment and model

机译:先进的激光扫描可实现高效的烧蚀和超快的表面结构化:实验和模型

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摘要

Ultra-short laser pulses are frequently used for material removal (ablation) in science, technology and medicine. However, the laser energy is often used inefficiently, thus, leading to low ablation rates. For the efficient ablation of a rectangular shaped cavity, the numerous process parameters such as scanning speed, distance between scanned lines, and spot size on the sample, have to be optimized. Therefore, finding the optimal set of process parameters is always a time-demanding and challenging task. Clear theoretical understanding of the influence of the process parameters on the material removal rate can improve the efficiency of laser energy utilization and enhance the ablation rate. In this work, a new model of rectangular cavity ablation is introduced. The model takes into account the decrease in ablation threshold, as well as saturation of the ablation depth with increasing number of pulses per spot. Scanning electron microscopy and the stylus profilometry were employed to characterize the ablated depth and evaluate the material removal rate. The numerical modelling showed a good agreement with the experimental results. High speed mimicking of bio-inspired functional surfaces by laser irradiation has been demonstrated.
机译:超短激光脉冲在科学,技术和医学中经常用于材料去除(消融)。然而,激光能量经常被低效地使用,因此导致低的烧蚀率。为了有效地消融矩形腔,必须优化许多工艺参数,例如扫描速度,扫描线之间的距离以及样品上的斑点大小。因此,找到最佳的过程参数集始终是一项耗时且具有挑战性的任务。对工艺参数对材料去除率的影响有清晰的理论理解可以提高激光能量利用的效率并提高烧蚀率。在这项工作中,介绍了一种新型的矩形腔消融模型。该模型考虑了烧蚀阈值的降低,以及烧蚀深度的饱和度(随着每个点的脉冲数增加)的增加。扫描电子显微镜和测针轮廓仪用于表征烧蚀深度并评估材料去除率。数值模拟与实验结果吻合良好。已经证明了通过激光照射可以高速模拟生物启发的功能表面。

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