The effect of composition and thermodynamics on the surface morphology of durable superhydrophobic polymer coatings.

IF 4.9 Q2 NANOSCIENCE & NANOTECHNOLOGY
Nanotechnology, Science and Applications Pub Date : 2017-02-15 eCollection Date: 2017-01-01 DOI:10.2147/NSA.S123447
Tehila Nahum, Hanna Dodiuk, Samuel Kenig, Artee Panwar, Carol Barry, Joey Mead
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引用次数: 12

Abstract

Durable superhydrophobic coatings were synthesized using a system of silica nanoparticles (NPs) to provide nanoscale roughness, fluorosilane to give hydrophobic chemistry, and three different polymer binders: urethane acrylate, ethyl 2-cyanoacrylate, and epoxy. Coatings composed of different binders incorporating NPs in various concentrations exhibited different superhydrophobic attributes when applied on polycarbonate (PC) and glass substrates and as a function of coating composition. It was found that the substrate surface characteristics and wettability affected the superhydrophobic characteristics of the coatings. Interfacial tension and spreading coefficient parameters (thermodynamics) of the coating components were used to predict the localization of the NPs for the different binders' concentrations. The thermodynamic analysis of the NPs localization was in good agreement with the experimental observations. On the basis of the thermodynamic analysis and the experimental scanning electron microscopy, X-ray photoelectron spectroscopy, profilometry, and atomic force microscopy results, it was concluded that localization of the NPs on the surface was critical to provide the necessary roughness and resulting superhydrophobicity. The durability evaluated by tape testing of the epoxy formulations was the best on both glass and PC. Several coating compositions retained their superhydrophobicity after the tape test. In summary, it was concluded that thermodynamic analysis is a powerful tool to predict the roughness of the coating due to the location of NPs on the surface, and hence can be used in the design of superhydrophobic coatings.

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组分和热力学对耐用超疏水聚合物涂层表面形貌的影响。
使用具有纳米级粗糙度的二氧化硅纳米颗粒(NPs)、具有疏水化学性质的氟硅烷以及三种不同的聚合物粘合剂:丙烯酸氨基甲酸酯、2-氰基丙烯酸乙酯和环氧树脂,合成了耐用的超疏水涂层。由不同浓度的NPs组成的涂层在聚碳酸酯(PC)和玻璃基材上表现出不同的超疏水特性,并且作为涂层成分的函数。研究发现,基材的表面特性和润湿性对涂层的超疏水性能有影响。利用涂层组分的界面张力和铺展系数参数(热力学)预测了不同黏合剂浓度下NPs的定位。NPs局域化的热力学分析结果与实验结果吻合较好。基于热力学分析和实验扫描电镜、x射线光电子能谱、轮廓术和原子力显微镜的结果,得出结论:NPs在表面的定位对于提供必要的粗糙度和由此产生的超疏水性至关重要。胶带测试结果表明,环氧树脂配方在玻璃和PC上的耐久性均最好。几种涂料组合物在胶带试验后仍保持其超疏水性。综上所述,热力学分析是预测涂层粗糙度的有力工具,因为NPs在表面上的位置,因此可以用于超疏水涂层的设计。
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来源期刊
Nanotechnology, Science and Applications
Nanotechnology, Science and Applications NANOSCIENCE & NANOTECHNOLOGY-
CiteScore
11.70
自引率
0.00%
发文量
3
审稿时长
16 weeks
期刊介绍: Nanotechnology, Science and Applications is an international, peer-reviewed, Open Access journal that focuses on the science of nanotechnology in a wide range of industrial and academic applications. The journal is characterized by the rapid reporting of reviews, original research, and application studies across all sectors, including engineering, optics, bio-medicine, cosmetics, textiles, resource sustainability and science. Applied research into nano-materials, particles, nano-structures and fabrication, diagnostics and analytics, drug delivery and toxicology constitute the primary direction of the journal.
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