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Femtosecond Laser Micro-ano-texturing of Stainless Steels for Surface Property Control

机译:飞秒激光对不锈钢进行表面特性控制的微/纳米变形

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摘要

Surface geometry has had an influence on the surface property, in addition to the intrinsic surface energy, of materials. Many physical surface modification methods had been proposed to control the solid surface geometry for modification of surface properties. Recently, short-pulse lasers were utilized to perform nano-texturing onto metallic and polymer substrates for the improvement of surface properties. Most of the papers reported that the hydrophilic metallic surface was modified to have a higher contact angle than 120–150°. Little studies explained the relationship between surface geometry and surface properties. In the present study, the laser micro-ano-texturing was developed to describe this surface-geometric effect on the static contact angles for pure water. Micropatterns with multi spatial frequencies are designed and synthesized into a microtexture. This tailored microtexture was utilized to prepare for computer aided machining (CAM) data to control the femtosecond laser beams. The nano-length ripples by laser induced periodic surface structuring (LIPSS) supposed onto this microtexture to form the micro-ano-texture on the AISI304 substrate surface. Computational geometry was employed to describe this geometric profile. The fractal dimension became nearly constant by 2.26 and insensitive to increase of static contact angle (θ) for θ > 150°. Under this defined self-similarity, the micro-ano-textured surface state was controlled to be super-hydrophobic by increasing the ratio of the highest spatial frequency in microtextures to the lowest one. This controllability of surface property on the stainless steels was supported by tailoring the wavelength and pitch of microtextures. Exposure testing was also used to evaluate the engineering durability of this micro-ano-textured surface. Little change of the measured fractal dimension during the testing proved that this physically modified AISI304 surface had sufficient stability for its long-term usage in air.
机译:除了固有的表面能之外,表面的几何形状还对表面性能产生了影响。已经提出了许多物理表面改性方法来控制固体表面几何形状以改性表面性质。近来,短脉冲激光被用于在金属和聚合物基底上进行纳米纹理化,以改善表面性能。大多数论文报道说,亲水性金属表面经过改性后具有比120–150°更高的接触角。很少有研究解释表面几何形状和表面特性之间的关系。在本研究中,开发了激光微/纳米织构来描述这种表面几何形状对纯水静态接触角的影响。设计具有多个空间频率的微图案并将其合成为微纹理。这种定制的微纹理被用于准备计算机辅助加工(CAM)数据以控制飞秒激光束。通过激光诱导的周期性表面结构化(LIPSS)产生的纳米级波纹在该微纹理上形成,从而在AISI304基板表面上形成微/纳米纹理。计算几何被用来描述这种几何轮廓。分形维数几乎恒定为2.26,并且当θ> 150°时对静态接触角(θ)的增加不敏感。在这种定义的自相似性下,通过增加微纹理中最高空间频率与最低空间频率之比,将微/纳米纹理表面状态控制为超疏水。通过调整微纹理的波长和间距,可以支持不锈钢表面性能的这种可控制性。暴露测试还用于评估该微/纳米纹理表面的工程耐久性。在测试过程中,测得的分形维数几乎没有变化,证明了这种经过物理修饰的AISI304表面具有足够的稳定性,可以长期在空气中使用。

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