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首页> 外文期刊>Journal of Colloid and Interface Science >A new method for producing 'Lotus Effect' on a biomimetic shark skin
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A new method for producing 'Lotus Effect' on a biomimetic shark skin

机译:在仿生鲨鱼皮上产生“莲花效应”的新方法

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摘要

Nature has long been an important source of inspiration for mankind to develop artificial ways to mimic the remarkable properties of biological systems. In this work, a new method was explored to fabricate a superhydrophobic dual-biomimetic surface comprising both the shark-skin surface morphology and the lotus leaf-like hierarchical microano-structures. The biomimetic surface possessing shark-skin pattern microstructure was first fabricated by microreplication of shark-skin surface based on PDMS; and then it was treated by flame to form hierarchical microano-structures that can produce lotus effect. The fabricated biomimetic surfaces were characterized with scanning electron microscopy (SEM), water contact angle measurements and liquid drop impact experiments. The results show that the fabricated dual-biomimetic surface possesses both the vivid shark-skin surface morphology and the lotus leaf-like hierarchical microano-structures. It can exhibit excellent superhydrophobicity that the contact angle is as high as 160° and maintain its robustness of the superhydrophobicity during the droplet impact process at a relatively high Weber number. The mechanism of the micromorphology evolution and microstructural changes on the biomimetic shark-skin surface was also discussed here in the process of flame treatment. This method is expected to be developed into a novel and feasible biomimetic surface manufacturing technique.
机译:长期以来,大自然一直是人类开发模仿人类生物系统卓越特性的人工方式的重要灵感来源。在这项工作中,探索了一种新的方法来制造既具有鲨鱼皮表面形态又具有荷叶状分层微观/纳米结构的超疏水双重仿生表面。首先通过基于PDMS的鲨鱼皮表面微复制,制备出具有鲨鱼皮图案微观结构的仿生表面。然后用火焰处理,形成分层的微观/纳米结构,可以产生荷叶效应。通过扫描电子显微镜(SEM),水接触角测量和液滴冲击实验对所制备的仿生表面进行了表征。结果表明,所制备的双重仿生表面既具有生动的鲨鱼皮表面形态,又具有荷叶状的分层微/纳米结构。接触角高达160°,可以表现出优异的超疏水性,并且在液滴冲击过程中以相对较高的韦伯数保持其超疏水性的​​鲁棒性。本文还讨论了仿生鲨鱼皮表面微观形态演化和微观结构变化的机理。预期该方法将被开发为新颖且可行的仿生表面制造技术。

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