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首页> 外文期刊>Journal of nanoscience and nanotechnology >Fabrication of the Micro/Nano-Structure Superhydrophobic Surface on Aluminum Alloy by Sulfuric Acid Anodizing and Polypropylene Coating
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Fabrication of the Micro/Nano-Structure Superhydrophobic Surface on Aluminum Alloy by Sulfuric Acid Anodizing and Polypropylene Coating

机译:硫酸阳极氧化和聚丙烯涂层在铝合金上制备微/纳米结构超疏水表面

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The preparation of the superhydrophobic surface on aluminum alloy by anodizing and polypropylene (PP) coating was reported. Both the different anodizing process and different PP 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. By PP coating after anodizing, a good superhydrophobic surface was facilely fabricated. The optimum conditions for anodizing were determined by orthogonal experiments. After the aluminium-alloy was grinded with 600# sandpaper, pretreated by 73 g/L hydrochloric acid solution at 1 min, when the concentration of sulfuric acid was 180 g/L, the concentration of oxalic acid was 5 g/L, the concentration of potassium dichromate was 10 g/L, the concentration of chloride sodium was 50 g/L and 63 g/L of glycerol, anodization time was 20 min, and anodization current was 1.2 A/dm~2, anodization temperature was 30-35℃, the best micro-nanostructure aluminum alloy films was obtained. On the other hand, the PP with different concentrations was used to the PP with different concentrations was used to coat the aluminum alloy surface after anodizing. The results showed that the best superhydrophobicity was achieved by coating PP, and the duration of the superhydrophobic surface was improved by modifying the coat the aluminum alloy surface after anodizing. The results showed that the best superhydrophobicity was surface with high concentration PP. The morphologies of microano-structure superhydrophobic surface were further confirmed by scanning electron microscope (SEM). The material of PP with the low surface free energy combined with the microano-structures of the surface resulted in the superhydrophobicity of the aluminum alloy surface.
机译:报道了通过阳极氧化和聚丙烯(PP)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PP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。通过阳极氧化后的PP涂层,容易地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。将铝合金用600#砂纸磨碎后,经73 g / L盐酸溶液预处理1 min,硫酸浓度为180 g / L时,草酸浓度为5 g / L,重铬酸钾的浓度为10 g / L,氯化钠的浓度为50 g / L,甘油为63 g / L,阳极氧化时间为20分钟,阳极氧化电流为1.2 A / dm〜2,阳极氧化温度为30-35 ℃,可获得最佳的微纳米结构铝合金薄膜。另一方面,使用不同浓度的PP至不同浓度的PP用于阳极氧化后的铝合金表面被覆。结果表明,通过涂覆PP可获得最佳的超疏水性,并通过对阳极氧化后的铝合金表面进行改性来改善超疏水表面的持续时间。结果表明,最佳的超疏水性是高浓度PP表面。通过扫描电子显微镜(SEM)进一步证实了微/纳米结构超疏水表面的形态。具有低表面自由能的PP材料与表面的微观/纳米结构相结合导致铝合金表面具有超疏水性。

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