Fabrication of micro-nano gradient wettability surface by nanosecond laser and thermal oxidation

IF 2.5 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Applied Physics A Pub Date : 2025-02-17 DOI:10.1007/s00339-025-08301-8
Bowen Miao, Lifei Wang, Tianwu Zhang, Zhen Zhang, Chenchong Wang
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Abstract

Surfaces with gradient wetting properties are crucial for alleviating water scarcity and efficient recycling, as it can be used for directed transport and collection of water. However, a major challenge is how to efficiently manufacture multi-scale micro-nano structures to increase surface wetting gradients. In this study, a composite processing that combines nanosecond laser oblique incidence and thermal oxidation to fabricate microgroove-nanowire (CuO) hierarchical structures with gradient wettability is proposed. Laser oblique incidence scanning is employed to fabricate microgroove structures with gradient geometric dimensions and chemical composition on the Cu surface, which in turn induced gradient wetting properties and facilitated the directed movement of droplets. The effect of scanning times on gradient structure and its wetting properties is also discussed in detail. To further enhance the directional flow distance of droplets, dense CuO nanowires are grown on the surface of microgrooves through thermal oxidation treatment, forming a micro-nano dual scale structure. The growth mechanism of nanowires is revealed, and the effects of thermal oxidation temperature and duration on nanowire growth and gradient wetting properties are discussed in detail. The gradient in contact angles, in conjunction with the variation in energy barriers in different directions, leads to more pronounced anisotropic wetting. Compared to the single microgroove structures, the directional flow distance of microgroove-nanowire dual scale structure is increased by about 50%. The proposed laser and thermal oxidation composite process provides a new strategy for efficiently manufacturing micro-nano dual scale structures and further enhancing surface gradient wetting performance.

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具有梯度润湿特性的表面对缓解水资源短缺和高效循环利用至关重要,因为它可用于定向输送和收集水。然而,如何有效制造多尺度微纳结构以增加表面润湿梯度是一大挑战。本研究提出了一种结合纳秒激光斜入射和热氧化的复合工艺,用于制造具有梯度润湿性的微槽-纳米线(CuO)分层结构。通过激光斜入射扫描,在铜表面制造出几何尺寸和化学成分渐变的微槽结构,进而诱导渐变润湿特性并促进液滴的定向移动。此外,还详细讨论了扫描时间对梯度结构及其润湿特性的影响。为了进一步提高液滴的定向流动距离,通过热氧化处理在微凹槽表面生长了致密的氧化铜纳米线,形成了微纳米双尺度结构。揭示了纳米线的生长机理,并详细讨论了热氧化温度和持续时间对纳米线生长和梯度润湿特性的影响。接触角的梯度以及不同方向能量势垒的变化导致了更明显的各向异性润湿。与单一微槽结构相比,微槽-纳米线双尺度结构的定向流动距离增加了约 50%。所提出的激光和热氧化复合工艺为高效制造微纳米双鳞片结构和进一步提高表面梯度润湿性能提供了一种新策略。
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来源期刊
Applied Physics A
Applied Physics A 工程技术-材料科学:综合
CiteScore
4.80
自引率
7.40%
发文量
964
审稿时长
38 days
期刊介绍: Applied Physics A publishes experimental and theoretical investigations in applied physics as regular articles, rapid communications, and invited papers. The distinguished 30-member Board of Editors reflects the interdisciplinary approach of the journal and ensures the highest quality of peer review.
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