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采用常压冷等离子体技术制备的疏水和超疏水表面:综述。

Hydrophobic and superhydrophobic surfaces fabricated using atmospheric pressure cold plasma technology: A review.

机构信息

Institute of Nanoscience and Nanotechnology, National Center for Scientific Research NCSR 'Demokritos', Aghia Paraskevi 15341, Attiki, Greece.

出版信息

Adv Colloid Interface Sci. 2018 Apr;254:1-21. doi: 10.1016/j.cis.2018.03.009. Epub 2018 Mar 29.

Abstract

Hydrophobic surfaces are often used to reduce wetting of surfaces by water. In particular, superhydrophobic surfaces are highly desired for several applications due to their exceptional properties such as self-cleaning, anti-icing, anti-friction and others. Such surfaces can be prepared via numerous methods including plasma technology, a dry technique with low environmental impact. Atmospheric pressure plasma (APP) has recently attracted significant attention as lower-cost alternative to low-pressure plasmas, and as a candidate for continuous rather than batch processing. Although there are many reviews on water-repellent surfaces, and a few reviews on APP technology, there are hardly any review works on APP processing for hydrophobic and superhydrohobic surface fabrication, a topic of high importance in nanotechnology and interface science. Herein, we critically review the advances on hydrophobic and superhydrophobic surface fabrication using APP technology, trying also to give some perspectives in the field. After a short introduction to superhydrophobicity of nanostructured surfaces and to APPs we focus this review on three different aspects: (1) The atmospheric plasma reactor technology used for fabrication of (super)hydrophobic surfaces. (2) The APP process for hydrophobic surface preparation. The hydrophobic surface preparation processes are categorized methodologically as: a) activation, b) grafting, c) polymerization, d) roughening and hydrophobization. Each category includes subcategories related to different precursors used. (3) One of the most important sections of this review concerns superhydrophobic surfaces fabricated using APP. These are methodologically characterized as follows: a) single step processes where micro-nano textured topography and low surface energy coating are created at the same time, or b) multiple step processes, where these steps occur sequentially in or out of the plasma. We end the review with some perspectives in the field. We aspire to address scientists, who will get involved in the fields of (super)hydrophobicity and/or in atmospheric pressure plasma processing.

摘要

疏水表面通常用于减少水对表面的润湿。特别是,由于其自清洁、抗结冰、抗摩擦等特殊性能,超疏水表面在许多应用中都非常需要。这些表面可以通过多种方法制备,包括等离子体技术,这是一种具有低环境影响的干法。大气压等离子体(APP)最近作为低压等离子体的低成本替代品引起了人们的极大关注,并且作为连续处理而不是批量处理的候选方法。尽管有许多关于防水表面的综述,以及一些关于 APP 技术的综述,但几乎没有关于 APP 处理用于疏水和超疏水表面制造的综述工作,这是纳米技术和界面科学中一个非常重要的主题。在这里,我们批判性地回顾了使用 APP 技术制造疏水和超疏水表面的进展,同时也试图在该领域提供一些观点。在简要介绍纳米结构表面的超疏水性和 APP 之后,我们将重点放在三个不同方面:(1)用于制造(超)疏水面的大气压等离子体反应器技术。(2)用于制备疏水面的 APP 工艺。疏水面制备工艺按方法学分类为:a)活化、b)接枝、c)聚合、d)粗糙化和疏水化。每个类别都包括与不同前体相关的子类别。(3)这篇综述的最重要部分之一涉及使用 APP 制造的超疏水表面。这些在方法学上的特征如下:a)一步法,其中微纳结构化形貌和低表面能涂层同时形成,或 b)多步法,其中这些步骤在等离子体内外依次发生。我们以该领域的一些观点结束综述。我们希望为涉及(超)疏水性和/或大气压等离子体处理领域的科学家提供帮助。

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