Abstract

Improvement of the wear resistance of functional surfaces is crucial in order to facilitate a variety of practical applications, such as self-cleaning or anti-fogging. This especially holds for functional surface nanostructures, whose tops can easily get worn off when exposed to even low abrasion forces. Thus, our work addresses the enhancement of the wear resistance of such fine-scale structures. We present an efficient manufacturing procedure for generating long-term durable surfaces with simultaneously tailored wetting behavior and high optical quality. Our approach is based on a sol-gel coating that consists of an alumina layer with specific nanoroughness yielding the function-relevant surface structure, and a protective thin smooth silica film providing the mechanical robustness without influencing that functional structure. The roughness of the alumina layer can be systematically adjusted, thus enabling us to achieve desired wetting effects all the way up to superhydrophilicity and, after application of an additional thin hydrophobic top coat, to superhydrophobicity. To demonstrate the enhanced robustness of these coatings we perform abrasive wear tests and investigate the impact of abrasion cycles on the wetting effects and optical properties of the coatings. Furthermore, the durability of the structures is directly revealed by advanced roughness characterization procedures based on Atomic Force Microscopy followed by power spectral density function (PSD) analysis.

Highlights

  • Over the last decades the role of functional surfaces has considerably changed

  • Our approach is based on a sol-gel coating that consists of an alumina layer with specific nanoroughness yielding the function-relevant surface structure, and a protective thin smooth silica film providing the mechanical robustness without influencing that functional structure

  • In the high spatial frequency range, 10 μm-1 to 1000 μm-1, which is tantamount to lateral components from 100 nm to 1 nm, the power spectral density function (PSD) values are significantly increasing from sample #1 to sample #5

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Summary

INTRODUCTION*

Over the last decades the role of functional surfaces has considerably changed. There is an ongoing trend of requests for surfaces that cover several different functionalities at once [1, 2]. Journal of Coating Science and Technology, 2016, Volume 3, No 3 not restorable in only one single process step This results in a high demand on mechanically durable surface roughness structures. In our paper we will present an efficient way to manufacture a surface with tailored wetting properties and high optical quality utilizing a sol-gel dip-coating process, where the functional structures are protected against wear. This coating consists of a nanorough alumina layer, responsible for the function-relevant surface roughness and a upper layer of silica, which largely enhances the mechanical durability of the whole system [38]. The increased mechanical robustness of the multifunctional coating will be quantified by advanced roughness analysis using power spectral density functions [39]

Nanorough Coating Preparation
Light Scattering Measurements
Wetting Characterization
Mechanical Durability Testing
Adjustable Surface Roughness
Adjustable Wetting Behavior and Optical Properties
Enhanced Mechanical Durability
SUMMARY
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