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Fabrication of superhydrophobic/superhydrophilic patterns on polyimide surface by ultraviolet laser direct texturing

机译:紫外线激光直接纹理制备超疏水/超硫酸水面的制造

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This paper presented a single-step processing method to fabricate either superhydrophobic or superhydrophilic patterns on different regions of polyimide surface by ultraviolet laser direct texturing. The effects of laser power intensity and pulse overlap on surface wettability were studied. When the laser power intensities applied were low ( < 5.5 x 10(5) W/cm(2)), the wettability of polyimide surface would transform from pristine hydrophilicity to superhydrophobicity with an increase of the pulse overlap. However, when the laser power intensities applied were high ( > 5.5 x 10(5) W/cm(2)), superhydrophilic surfaces could be obtained with increasing the pulse overlap. Thus, either superhydrophobic or superhydrophilic patterns would be fabricated by adjusting the laser power intensity and pulse overlap. Scanning electron microscopy (SEM), X-ray photoelectron spectroscopy (XPS), Fourier transform infrared (FT-IR) spectroscopy, and water contact angle meter were employed to characterize the physical and chemical properties of the laser-textured surface, respectively. The results showed that surface roughness and chemical compositions were varied by changing these two laser parameters, and both the surface roughness and the surface chemistry contributed to the change of wetting behavior of polyimide patterns. The convenient and efficient method to create the patterns with superhydrophobicity and/or superhydrophilicity would have the potential applications in flexible electronics, microfluidics, bio-technical field, and so on.
机译:本文介绍了通过紫外激光直接纹理化在多酰亚胺表面的不同区域上制造超疏水或超硫酸的超疏水或超硫酸化图案的单步处理方法。研究了激光功率强度和脉冲重叠对表面润湿性的影响。当施加的激光功率强度低(<5.5×10(5)W / cm(2))时,聚酰亚胺表面的润湿性将从原始的亲水性转换为超流性,随着脉冲重叠的增加而变化。然而,当施加的激光功率强度为高(> 5.5×10(5)W / cm(2))时,可以通过增加脉冲重叠来获得超硫酸化表面。因此,通过调节激光功率强度和脉冲重叠来制造超疏水或超硫酸化图案。扫描电子显微镜(SEM),X射线光电子能谱(XPS),傅里叶变换红外(FT-IR)光谱和水接触角表分别表征激光织地表面的物理和化学性质。结果表明,通过改变这两个激光参数来改变表面粗糙度和化学组合物,以及表面粗糙度和表面化学造成聚酰亚胺图案的润湿行为的变化。具有超疏水性和/或超细管性的方便高效的方法将具有柔性电子,微流体,生物技术领域等潜在应用。

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