首页> 外文期刊>仿生工程学报(英文版) >Nanoparticles Covered Surfaces for Post-functionalization with Aromatic Groups to Obtain Parahydrophobic Surface with High Water Adhesion (Petal Effect)
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Nanoparticles Covered Surfaces for Post-functionalization with Aromatic Groups to Obtain Parahydrophobic Surface with High Water Adhesion (Petal Effect)

机译:纳米粒子覆盖的表面用于芳香族基团的后功能化,以获得具有高水附着力的疏水性表面(花瓣效应)

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摘要

Numerous exceptional properties can be observed in nature.Among these properties,parahydrophobic feature is of interest.This property describes material with high adhesion with water such as rose petals or gecko foot.Such kind of surface presents a real potential for applications in the field of water harvesting systems.In this work,we report a new synthetic strategy to mimic this property.Here,we combine three strategies in one.First,a monomer is electropolymerized in order to form the starting structured surface.Then,nanoparticles are grafted on the surface to increase the structuration and consequently to create the reactive surface.Finally,the grafted surface is post-functionalized (Huisgen reaction) with various aryl alkynes to control the surface chemistry and energy.This strategy allows to reach surfaces with both very high hydrophobic properties (θ=140°) and high water adhesion.This work also includes the surface wettability,roughness and morphology investigation in order to study the impact of the starting monomer structure and post-functionalization on the surface properties.
机译:在自然界中可以观察到许多特殊的性能。在这些性能中,超疏水特性是令人关注的。此特性描述了与水具有高附着力的材料,例如玫瑰花瓣或壁虎脚。这种表面在医疗领域具有真正的应用潜力。在这项工作中,我们报告了一种模仿该特性的新合成策略。在此,我们将三种策略结合在一起。首先,对单体进行电聚合以形成起始结构化表面。然后,将纳米粒子接枝到最后,将接枝表面与各种芳基炔进行后官能化(Huisgen反应),以控制表面化学和能量。此策略可以使表面具有很高的疏水性(θ= 140°)和高水附着力。这项工作还包括表面润湿性,粗糙度和形态研究,以确保udy起始单体结构和后功能化对表面性能的影响。

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  • 来源
    《仿生工程学报(英文版)》 |2017年第3期|468-475|共8页
  • 作者单位

    Université C(o)te d'Azur, NICE Lab, IMREDD, Parc Valrose 06100 Nice, France;

    Université C(o)te d'Azur, NICE Lab, IMREDD, Parc Valrose 06100 Nice, France;

    Université C(o)te d'Azur, NICE Lab, IMREDD, Parc Valrose 06100 Nice, France;

    Université C(o)te d'Azur, NICE Lab, IMREDD, Parc Valrose 06100 Nice, France;

  • 收录信息 中国科学引文数据库(CSCD);中国科技论文与引文数据库(CSTPCD);
  • 原文格式 PDF
  • 正文语种 eng
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