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基于磁辅助自组装片状电极放电加工的无涂层超疏水硬质表面

Coating-Free Superhydrophobic Hard Surfaces by Electric Discharge Machining with a Magnetic-Assisted Self-Assembly Sheet Electrode.

作者信息

Li Kangsen, Wang Chunjin, Gong Feng, Cheung Chi Fai, Chen Zibin, Wang Zuankai

机构信息

State Key Laboratory of Ultra-precision Machining Technology, Department of Industrial and Systems Engineering, The Hongkong Polytechnic University, Hung Hom, Hong Kong, China.

Shenzhen Key Laboratory of High Performance Nontraditional Manufacturing, College of Mechatronics and Control Engineering, Shenzhen University, Shenzhen 518060, Guangdong China.

出版信息

ACS Appl Mater Interfaces. 2024 Mar 27;16(12):15548-15557. doi: 10.1021/acsami.3c19487. Epub 2024 Mar 15.

Abstract

Artificial superhydrophobic surfaces hold significant potential in various domains, encompassing self-cleaning, droplet manipulation, microfluidics, and thermal management. Consequently, there is a burgeoning demand for cost-effective, mass-producible, and easily fabricated superhydrophobic surfaces for commercial and industrial applications. This research introduces an efficient, uncomplicated method for constructing hierarchical structures on hard substrates such as binderless tungsten carbide (WC) and glass substrates. The WC substrates were processed by using electrical discharge machining (EDM) with a magnetic-assisted self-assembly sheet electrode. The resultant surfaces comprised micropillars/microgrooves and diminutive craters formed by discharge and ablation, respectively. These surfaces exhibited superior hydrophobic properties, which can be attributed to the modified surface energy and surface texture construction. Our study indicates that a superhydrophobic surface can be achieved on a textured binderless WC. The maximum contact angle and minimum roll-off angle of the hierarchical structure induced by EDM with a magnetic-assisted self-assembly sheet electrode are about 158 and 5°, respectively. The advancing and receding angles are about 161° ± 2 and 157° ± 3, respectively, when the base is tilted at 3°. Furthermore, we have successfully replicated this superhydrophobic structured surface on glass substrates utilizing glass molding technology. This innovative approach to creating superhydrophobic surfaces on hard materials paves the way for the mass production of functional structures on other materials, such as metallic glass, titanium alloy, and mold steel. Most crucially, the proposed fabrication technique offers a straightforward, cost-effective route for creating functional surfaces, rendering it attractive for large-scale industrial production due to its considerable application prospects.

摘要

人工超疏水表面在各个领域都具有巨大潜力,包括自清洁、液滴操控、微流体和热管理。因此,对于商业和工业应用而言,对具有成本效益、可大规模生产且易于制造的超疏水表面的需求正在迅速增长。本研究介绍了一种在诸如无粘结剂碳化钨(WC)和玻璃基板等硬质基板上构建分级结构的高效、简便方法。WC基板通过使用带有磁辅助自组装片状电极的放电加工(EDM)进行处理。所得表面分别由放电和烧蚀形成的微柱/微槽和微小坑洼组成。这些表面表现出优异的疏水性能,这可归因于改性的表面能和表面纹理构造。我们的研究表明,在有纹理的无粘结剂WC上可以实现超疏水表面。使用磁辅助自组装片状电极的EDM诱导的分级结构的最大接触角和最小滚落角分别约为158°和5°。当基座倾斜3°时,前进角和后退角分别约为161°±2°和157°±3°。此外,我们利用玻璃成型技术成功地在玻璃基板上复制了这种超疏水结构表面。这种在硬质材料上创建超疏水表面的创新方法为在其他材料(如金属玻璃、钛合金和模具钢)上大规模生产功能结构铺平了道路。最关键的是,所提出的制造技术为创建功能表面提供了一种直接、经济高效的途径,由于其可观的应用前景,使其对大规模工业生产具有吸引力。

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