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Facile Electrochemical Method for the Fabrication of Stable Corrosion-Resistant Superhydrophobic Surfaces on Zr-Based Bulk Metallic Glasses

机译:Zr基散装金属玻璃稳定耐腐蚀超疏水表面制造的容易电化学方法

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摘要

Both surface microstructure and low surface energy modification play a vital role in the preparation of superhydrophobic surfaces. In this study, a safe and simple electrochemical method was developed to fabricate superhydrophobic surfaces of Zr-based metallic glasses with high corrosion resistance. First, micro–nano composite structures were generated on the surface of Zr-based metallic glasses by electrochemical etching in NaCl solution. Next, stearic acid was used to decrease surface energy. The effects of electrochemical etching time on surface morphology and wettability were also investigated through scanning electron microscopy and contact angle measurements. Furthermore, the influence of micro–nano composite structures and roughness on the wettability of Zr-based metallic glasses was analysed on the basis of the Cassie–Baxter model. The water contact angle of the surface was 154.3° ± 2.2°, and the sliding angle was <5°, indicating good superhydrophobicity. Moreover, the potentiodynamic polarisation test and electrochemical impedance spectroscopy suggested excellent corrosion resistance performance, and the inhibition efficiency of the superhydrophobic surface reached 99.6%. Finally, the prepared superhydrophobic surface revealed excellent temperature-resistant and self-cleaning properties.
机译:表面微观结构和低表面能改性在超疏水表面的制备中起着至关重要的作用。在该研究中,开发了一种安全和简单的电化学方法,以制造具有高耐腐蚀性的Zr基金属玻璃的超疏水表面。首先,通过NaCl溶液中的电化学蚀刻在Zr基金属玻璃表面上产生微纳米复合结构。接下来,使用硬脂酸降低表面能。还通过扫描电子显微镜和接触角测量研究了电化学蚀刻时间对表面形态和润湿性的影响。此外,基于Cassie-Baxter模型分析了微纳米复合结构对Zr基金属玻璃润湿性的影响。表面的水接触角为154.3°±2.2°,滑动角度<5°,表明良好的超疏水性。此外,电压偏振试验和电化学阻抗光谱表明出色的耐腐蚀性性能,超疏水表面的抑制效率达到99.6%。最后,制备的超疏水表面揭示了优异的耐温性和自清洁性能。

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