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Femtosecond laser fabrication of highly hydrophobic stainless steel surface with hierarchical structures fabricated by combining ordered microstructures and LIPSS

机译:飞秒激光加工高疏水性不锈钢表面,并通过有序微结构和LIPSS组合形成分层结构

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摘要

In this work we have developed hierarchical structures that consist of micro-patterned surfaces covered by nanostructures with a femtosecond laser. The first part of this work is a study to determine the microscale modifications produced on a stainless steel alloy (AISI304) surface at high pulse energy, different velocities, and number of overscans in order to obtain microstructures with a selected depth of around 10 mu m and line widths of 20 mu m. The second part of the work is focused on finding the optimal irradiation parameters to obtain the nanostructure pattern. Nanostructures have been defined by means of Laser Induced Periodical Surface Structures (LIPSS) around 250 nm high and a period of 580 nm, which constitute the nanostructure pattern. Finally, dual scale gratings of 50 mm(2) were fabricated with different geometries and their effect on the measured contact angle. Combining the micro-pattern with the LIPSS nano-pattern, highly hydrophobic surfaces have been developed with measured static contact angles higher than 150 degrees on a stainless steel alloy. (C) 2015 Elsevier B.V. All rights reserved.
机译:在这项工作中,我们开发了由飞秒激光在纳米结构上覆盖的微图案表面组成的分层结构。这项工作的第一部分是研究,以确定在高脉冲能量,不同速度和过扫描次数下,在不锈钢合金(AISI304)表面上产生的微尺度变化,以便获得选定深度约为10微米的微结构。线宽为20微米。工作的第二部分着重于寻找最佳辐照参数以获得纳米结构图案。借助于激光诱导的周期性表面结构(LIPSS)定义了约250 nm高和580 nm周期的纳米结构,这些结构构成了纳米结构图案。最后,制造了具有不同几何形状的50 mm(2)的双刻度光栅及其对所测量的接触角的影响。将微图案与LIPSS纳米图案相结合,已开发出高度疏水的表面,在不锈钢合金上测得的静态接触角大于150度。 (C)2015 Elsevier B.V.保留所有权利。

著录项

  • 来源
    《Applied Surface Science》 |2016年第30期|81-89|共9页
  • 作者单位

    Univ Navarra, CEIT IK4, Paseo Manuel Lardizabal 15, San Sebastian 20018, Spain|Univ Navarra, Tecnun, Paseo Manuel Lardizabal 15, San Sebastian 20018, Spain|CIC MicroGUNE, Goiru Kalea 9 Polo Innovac Garaia, Arrasate Mondragon 20500, Spain;

    Univ Navarra, CEIT IK4, Paseo Manuel Lardizabal 15, San Sebastian 20018, Spain|Univ Navarra, Tecnun, Paseo Manuel Lardizabal 15, San Sebastian 20018, Spain|CIC MicroGUNE, Goiru Kalea 9 Polo Innovac Garaia, Arrasate Mondragon 20500, Spain;

    Univ Navarra, CEIT IK4, Paseo Manuel Lardizabal 15, San Sebastian 20018, Spain|Univ Navarra, Tecnun, Paseo Manuel Lardizabal 15, San Sebastian 20018, Spain|CIC MicroGUNE, Goiru Kalea 9 Polo Innovac Garaia, Arrasate Mondragon 20500, Spain;

    Univ Navarra, CEIT IK4, Paseo Manuel Lardizabal 15, San Sebastian 20018, Spain|Univ Navarra, Tecnun, Paseo Manuel Lardizabal 15, San Sebastian 20018, Spain|CIC MicroGUNE, Goiru Kalea 9 Polo Innovac Garaia, Arrasate Mondragon 20500, Spain;

    Univ Navarra, CEIT IK4, Paseo Manuel Lardizabal 15, San Sebastian 20018, Spain|Univ Navarra, Tecnun, Paseo Manuel Lardizabal 15, San Sebastian 20018, Spain|CIC MicroGUNE, Goiru Kalea 9 Polo Innovac Garaia, Arrasate Mondragon 20500, Spain;

    Univ Navarra, CEIT IK4, Paseo Manuel Lardizabal 15, San Sebastian 20018, Spain|Univ Navarra, Tecnun, Paseo Manuel Lardizabal 15, San Sebastian 20018, Spain|CIC MicroGUNE, Goiru Kalea 9 Polo Innovac Garaia, Arrasate Mondragon 20500, Spain;

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