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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Fabrication of S-shaped micron-sized constrictions on FeC (steel) surface using femtosecond laser ablation with beam shaping
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Fabrication of S-shaped micron-sized constrictions on FeC (steel) surface using femtosecond laser ablation with beam shaping

机译:利用飞秒激光烧蚀和光束整形在FeC(钢)表面制备S形微米级收缩

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摘要

In this paper, we demonstrate the fabrication of S-shaped micron-sized constrictions on steel (Fe3CII) surface using the femtosecond laser ablation technique. The femtosecond laser used has a wavelength of 775 nm, a power range of 0-1000 mW, a pulse duration of 130 fs, and a pulse repetition rate of 1-2 kHz. The ultra-low-pulse duration of 130 fs enables ablation of material surfaces without excessive thermal heating of the material around the zone of ablation. This becomes useful when ablating materials that are thermally sensitive such as superconducting thin films. This practice run of ablating S-shaped micron-sized constrictions on steel surfaces shown in this paper will enable one to use the same technique in ablating micron- and nano-sized structures on superconducting thin films without thermally altering the superconductive film. In this paper, S-shaped micron-sized constrictions on steel were fabricated with a constriction width of 37.1 and 47.3 mu m whose images were created using an optical microscope (OM) and S-shaped micron-sized constrictions with a constriction width of 30.8 and 35.2 mu m whose images were created using an atomic force microscope (AFM). The reduction in the constriction widths was achieved by reducing the laser ablation width or laser ablation spot size and then bringing the laser ablation spots closer together in G-code program. The reduction of the laser ablation width is achieved by reducing the laser fluence applied closer to the ablation threshold of steel and by using laser beam shaping techniques such as beam collimation and beam focusing.
机译:在本文中,我们演示了使用飞秒激光烧蚀技术在钢(Fe3CII)表面制造S形微米级收缩。使用的飞秒激光波长为 775 nm,功率范围为 0-1000 mW,脉冲持续时间为 130 fs,脉冲重复频率为 1-2 kHz。130 fs 的超低脉冲持续时间使材料表面的烧蚀成为可能,而不会对烧蚀区域周围的材料进行过热加热。这在烧蚀热敏性材料(如超导薄膜)时非常有用。本文所示的这种在钢表面上烧蚀 S 形微米级收缩的实践运行将使人们能够在不热改变超导薄膜的情况下使用相同的技术来烧蚀超导薄膜上的微米和纳米级结构。本文制备了收缩宽度分别为37.1和47.3 μ m的S形微米级收缩,其图像是使用光学显微镜(OM)创建的,S形微米级收缩是收缩宽度为30.8和35.2 μ m,其图像是使用原子力显微镜(AFM)创建的。收缩宽度的减小是通过减小激光烧蚀宽度或激光烧蚀光斑尺寸,然后在G代码程序中使激光烧蚀光斑靠得更近来实现的。激光烧蚀宽度的减小是通过降低施加在接近钢烧蚀阈值的激光通量以及使用激光束整形技术(如光束准直和光束聚焦)来实现的。

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