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Hydrophobicity and tribology of large-area textured copper with nanogrown copper oxide

机译:纳米生长氧化铜的大面积织构铜的疏水性和摩擦学

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摘要

Copper (Cu) is widely used as an engineering material for automotive industries. Herein, a two-step surface innovation process was evolved to enhance the hydrophobicity and wear resistance of the copper surface. Rapid fabrication of large-area texturing was performed by the abrasive water jet technique followed by nanogrowth of copper oxide (CuO) film on the copper substrate. Increased hydrophobicity is observed for textured copper (120°) and copper with nanogrown CuO (133°) compared to that of copper without these features (63°). It may be noted that synergistic texturing and nanogrowth of CuO has resulted in the highest contact angle (155°). X-ray photoelectron spectroscopy revealed the least percentage contribution of Cu–OH group to synergetic texture and nanogrowth (1·25 %). Further, the fretting wear test divulged the high wear resistance of synergistically textured copper with nanogrown CuO, as its coefficient of friction was lowest (0·46) when compared with that of copper (0·52). The observed improvement in wear resistance is attributed to textured pillars trapping the wear debris and reduction in the real contact area due to nanogrown CuO. Thus, this novel large-area texturing technique combined with nanogrown CuO may provide potential self-lubrication and render superhydrophobic surfaces for automotive applications.
机译:铜(Cu)被广泛用作汽车工业的工程材料。在此,进行了两步表面创新工艺,以增强铜表面的疏水性和耐磨性。大面积纹理化的快速制造是通过磨料水喷射技术进行的,然后在铜基板上纳米生长氧化铜(CuO)膜。与没有这些特征的铜(63°)相比,织构铜(120°)和具有纳米生长的CuO(133°)的铜的疏水性增加。可以注意到,CuO的协同织构化和纳米增长导致了最高的接触角(155°)。 X射线光电子能谱显示Cu-OH基团对协同结构和纳米增长的贡献最小(1·25%)。此外,微动磨损试验揭示了具有纳米晶粒的CuO的协同织构铜的高耐磨性,因为与铜(0·52)相比,其摩擦系数最低(0·46)。观察到的耐磨性提高归因于织构化的柱子捕获了磨损碎片,并且由于纳米生长的CuO减少了实际接触面积。因此,这种新颖的大面积纹理化技术与纳米增长的CuO结合可以提供潜在的自润滑性,并为汽车应用提供超疏水的表面。

著录项

  • 来源
    《Surface Innovations》 |2016年第4期|205-213|共9页
  • 作者单位

    Department of Mechanical Engineering, Indian Institute of Technology Kanpur, Kanpur, India;

    Department of Materials Science and Engineering,Indian Institute of Technology Kanpur, Kanpur, India;

    Department of Mechanical Engineering, Indian Institute of Technology Kanpur, Kanpur, India;

    Department of Materials Science and Engineering,Indian Institute of Technology Kanpur, Kanpur, India;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    hydrophobic; nanostructures; wetting;

    机译:疏水性纳米结构湿润的;

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