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The Relationship between Superhydrophobicity, Self-Cleaning Performance and Microstructure of Moth Wing

机译:超疏水性,自清洗性能和蛾翼微观结构的关系

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The microstructure and superhydrophobicity of the moth wing surfaces were investigated by a scanning electron microscope (SEM), an atomic force microscope (AFM) and a contact angle (CA) meter. The relationship between superhydrophobicity, self-cleaning performance and microstructural characteristic was discussed. The wing surface is of low adhesion (sliding angle 1~4°) and high hydrophobicity (CA 151~158°). The removal rate of CaCO_3 pollution from the wing surface is as high as 86.7%. There is a good positive correlation (R~2=0.8883) between pollution removal rate and roughness index of the wing surface. The coupling effects of hydrophobic material and rough microstructure contribute to the complex wettability and remarkable self-cleaning property of the wing surface. Moth wing can be used as a template for design of micro-controllable superhydrophobic surface and nano self-cleaning material. This work may offer inspirations for preparation of novel interfacial material with multi-functions.
机译:通过扫描电子显微镜(SEM),原子力显微镜(AFM)和接触角(CA)仪表研究了蛾翼表面的微观结构和超水性。讨论了超疏水性,自清洁性能和微观结构特征之间的关系。翼面具有低粘合力(滑动角度1〜4°)和高疏水性(Ca151〜158°)。从翼面的CaCO_3污染的去除率高达86.7%。纺织表面的污染去除率和粗糙度指数之间存在良好的正相关(R〜2 = 0.8883)。疏水材料和粗糙微观结构的偶联效果有助于机翼表面的复杂润湿性和显着的自清洁性。蛾翼可用作微量可控超疏水表面和纳米自清洁材料设计的模板。这项工作可以提供一种鼓舞人士,用于制备具有多功能的新型界面材料。

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