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Fabrication of the superhydrophobic surface on aluminum alloy by anodizing and polymeric coating

机译:通过阳极氧化和聚合物涂层在铝合金上制造超疏水表面

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摘要

We reported the preparation of the superhydrophobic surface on aluminum alloy via anodizing and polymeric coating. Both the different anodizing processes and different polymeric coatings of aluminum alloy were investigated. The effects of different anodizing conditions, such as electrolyte concentration, anodization time and current on the superhydrophobic surface were discussed. The results showed that a good superhydrophobic surface was facilely fabricated by polypropylene (PP) coating after anodizing. The optimum conditions for anodizing were determined by orthogonal experiments. When the concentration of oxalic acid was 10g/L, the concentration of NaCl was 1.25 g/L, anodization time was 40 min, and anodization current was 0.4 A, the best superhydrophobic surface on aluminum alloy with the contact angle (CA) of 162° and the sliding angle of 2° was obtained. On the other hand, the different polymeric coatings, such as polystyrene (PS), polypropylene (PP) and polypropylene grafting maleic anhydride (PP-g-MAH) were used to coat the aluminum alloy surface after anodizing. The results showed that the superhydrophobicity was most excellent by coating PP, while the duration of the hydrophobic surface was poor. By modifying the surface with the silane coupling agent before PP coating, the duration of the superhydrophobic surface was improved. The morphologies of the superhydrophobic surface were further confirmed by optical microscope (OM) and scanning electron microscope (SEM). Combined with the material of PP with the low surface free energy, the microano-structures of the surface resulted in the superhydrophobicity of the aluminum alloy surface.
机译:我们报道了通过阳极氧化和聚合物涂层在铝合金上制备超疏水表面的方法。研究了铝合金的不同阳极氧化工艺和不同的聚合物涂层。讨论了不同的阳极氧化条件,如电解质浓度,阳极氧化时间和电流对超疏水表面的影响。结果表明,在阳极氧化后,通过聚丙烯(PP)涂层可轻松制造出良好的超疏水表面。通过正交实验确定最佳的阳极氧化条件。草酸浓度为10g / L,NaCl浓度为1.25g / L,阳极氧化时间为40min,阳极氧化电流为0.4A时,铝合金的最佳超疏水表面的接触角(CA)为162 ,获得2°的滑动角。另一方面,在阳极氧化后,使用不同的聚合物涂层,例如聚苯乙烯(PS),聚丙烯(PP)和聚丙烯接枝马来酸酐(PP-g-MAH)来涂覆铝合金表面。结果显示,通过涂覆PP,超疏水性最优异,而疏水表面的持续时间较差。通过在PP涂覆之前用硅烷偶联剂修饰表面,可以改善超疏水表面的持续时间。通过光学显微镜(OM)和扫描电子显微镜(SEM)进一步证实了超疏水表面的形态。结合表面自由能低的PP材料,表面的微观/纳米结构导致铝合金表面具有超疏水性。

著录项

  • 来源
    《Applied Surface Science》 |2013年第1期|872-878|共7页
  • 作者单位

    Key laboratory of Advanced Materials and Technology for Packaging, Hunan University of Technology, Zhuzhou 412007, China,College of Packaging and Materials Engineering, Hunan University ofTechnology, Zhuzhou 412007, China;

    College of Packaging and Materials Engineering, Hunan University ofTechnology, Zhuzhou 412007, China;

    College of Packaging and Materials Engineering, Hunan University ofTechnology, Zhuzhou 412007, China;

    College of Packaging and Materials Engineering, Hunan University ofTechnology, Zhuzhou 412007, China;

    College of Packaging and Materials Engineering, Hunan University ofTechnology, Zhuzhou 412007, China;

    Key laboratory of Advanced Materials and Technology for Packaging, Hunan University of Technology, Zhuzhou 412007, China,College of Packaging and Materials Engineering, Hunan University ofTechnology, Zhuzhou 412007, China;

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

    superhydrophobic surface; anodizing; polymeric coating; aluminum alloy;

    机译:超疏水表面阳极氧化聚合物涂层铝合金;

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