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High-speed manufacturing of highly regular femtosecond laser-induced periodic surface structures: physical origin of regularity

机译:高速制造高度规则的飞秒激光诱导的周期性表面结构:规则性的物理起源

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摘要

Highly regular laser-induced periodic surface structures (HR-LIPSS) have been fabricated on surfaces of Mo, steel alloy and Ti at a record processing speed on large areas and with a record regularity in the obtained sub-wavelength structures. The physical mechanisms governing LIPSS regularity are identified and linked with the decay length (i.e. the mean free path) of the excited surface electromagnetic waves (SEWs). The dispersion of the LIPSS orientation angle well correlates with the SEWs decay length: the shorter this length, the more regular are the LIPSS. A material dependent criterion for obtaining HR-LIPSS is proposed for a large variety of metallic materials. It has been found that decreasing the spot size close to the SEW decay length is a key for covering several cm2 of material surface by HR-LIPSS in a few seconds. Theoretical predictions suggest that reducing the laser wavelength can provide the possibility of HR-LIPSS production on principally any metal. This new achievement in the unprecedented level of control over the laser-induced periodic structure formation makes this laser-writing technology to be flexible, robust and, hence, highly competitive for advanced industrial applications based on surface nanostructuring.
机译:在Mo,钢合金和Ti的表面上,以大面积的加工速度并在获得的亚波长结构中以规则的规则性制造了高度规则的激光诱导的周期性表面结构(HR-LIPSS)。确定了控制LIPSS规律性的物理机制,并将其与受激表面电磁波(SEW)的衰减长度(即平均自由程)相关联。 LIPSS定向角的离散度与SEW衰减长度密切相关:该长度越短,LIPSS越规则。针对多种金属材料,提出了获得HR-LIPSS的材料相关标准。已经发现减小光点尺寸接近SEW衰减长度是通过HR-LIPSS在几秒钟内覆盖材料表面几cm 2 的关键。理论预测表明,减小激光波长可以为主要在任何金属上生产HR-LIPSS的可能性。在对激光诱导的周期性结构形成进行前所未有的控制水平方面的这一新成就,使得该激光写入技术变得灵活,强大,因此对于基于表面纳米结构的先进工业应用具有很高的竞争力。

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