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Stearic Acid Coated MgO Nanoplate Arrays as Effective Hydrophobic Films for Improving Corrosion Resistance of Mg-Based Metallic Glasses

机译:硬脂酸涂层的MgO纳米板阵列作为有效的疏水膜可提高镁基金属玻璃的耐蚀性

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摘要

Mg-based metallic glasses (MGs) are widely studied due to their high elasticity and high strength originating from their amorphous nature. However, their further application in many potential fields is limited by poor corrosion resistance. In order to improve this property, an MgO nanoplate array layer is first constructed on the surface of Mg-based MGs by cyclic voltammetry (CV) treatments. In this situation, the corrosion resistance and hydrophilicity of the material are enhanced. Then, stearic acid (SA) can effectively adhere onto the surface of the MgO layer to form a superficial hydrophobic film with a water contact angle (WCA) of 131°. As a result, the SA coated MgO hydrophobic film improves the corrosion resistance of Mg-based MGs in 3.5 wt.% NaCl solution obviously. In addition, the effects of four technological parameters (solution concentration, sweep rate, cycle number, and reaction temperature) in the CV process on the morphology and size of nano-products are investigated in detail. The work proposes a new method for the creation of nanostructures on the surface of materials and provides a new idea to increase the corrosion resistance of MGs. The related method is expected to be applied in wider fields in future.
机译:镁基金属玻璃(MGs)由于其无定形性质而具有高弹性和高强度,因此被广泛研究。然而,它们在许多潜在领域中的进一步应用受到耐腐蚀性差的限制。为了改善该性质,首先通过循环伏安法(CV)处理在基于Mg的MG的表面上构建MgO纳米板阵列层。在这种情况下,材料的耐腐蚀性和亲水性得到增强。然后,硬脂酸(SA)可以有效地粘附到MgO层的表面上,以形成水接触角(WCA)为131°的表面疏水膜。结果,在3.5wt。%的NaCl溶液中,SA涂覆的MgO疏水膜明显改善了Mg基MG的耐腐蚀性。此外,详细研究了CV工艺中的四个工艺参数(溶液浓度,吹扫速率,循环次数和反应温度)对纳米产品的形态和尺寸的影响。这项工作提出了一种在材料表面上创建纳米结构的新方法,并为提高MG的耐腐蚀性提供了新思路。相关方法有望在未来广泛应用。

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