Optimization of corrosion resistance of AZ31 Mg alloy through hydration-driven interaction between quinolin-8-ol and plasma electrolytic oxidation-formed MgO layer

IF 15.8 1区 材料科学 Q1 METALLURGY & METALLURGICAL ENGINEERING Journal of Magnesium and Alloys Pub Date : 2025-01-14 DOI:10.1016/j.jma.2024.12.023
Mosab Kaseem, Talitha Tara Thanaa, Ananda Repycha Safira, Alireza Askari, Arash Fattah-alhosseini
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Abstract

This study presents a novel approach to improving the anticorrosive performance of AZ31 Mg alloy by exploiting the role of the hydration reaction to induce interactions between Quinolin-8-ol (8HQ) molecules and the porous MgO layer formed via plasma electrolytic oxidation (PEO). The AZ31 Mg alloy, initially coated with a PEO layer, underwent a dipping treatment in an ethanolic solution of 0.05 M 8HQ at 50 °C for 3 h The results were compared with those from a different procedure where the PEO layer was subjected to a hydration reaction for 2 h at 90 °C before immersion in the 8HQ solution under the same conditions. The hydration treatment played a crucial role by converting MgO to Mg(OH)₂, significantly enhancing the surface reactivity. This transformation introduced hydroxyl groups (−OH) on the surface, which facilitated donor-acceptor interactions with the electron-accepting sites on 8HQ molecules. The calculated binding energy (Ebinding) from DFT indicated that the interaction energy of 8HQ with Mg(OH)₂ was lower compared to 8HQ with MgO, suggesting easier adsorption of 8HQ molecules on the hydrated surface. This, combined with the increased number of active sites and enhanced surface area, allowed for extensive surface coverage by 8HQ, leading to the formation of a stable, flake-like protective layer that sealed the majority of pores on the PEO layer. DFT calculations further suggested that the hydration treatment provided multiple active sites, enabling effective contact with 8HQ and rapid electron transfer, creating ideal conditions for charge-transfer-induced physical and chemical bonding. This study shows that hydration and 8HQ treatments significantly enhance the corrosion resistance of Mg alloys, highlighting their potential for advanced anticorrosive coatings.

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通过喹啉-8-醇与等离子电解氧化形成的氧化镁层之间的水合作用优化 AZ31 镁合金的耐腐蚀性能
本研究提出了一种提高 AZ31 Mg 合金防腐性能的新方法,即利用水化反应诱导喹啉-8-醇(8HQ)分子与通过等离子电解氧化(PEO)形成的多孔氧化镁层之间的相互作用。AZ31 Mg 合金最初涂有 PEO 层,在 50 °C、0.05 M 8HQ 的乙醇溶液中浸渍 3 小时。水化处理通过将氧化镁转化为 Mg(OH)₂发挥了关键作用,显著提高了表面活性。这种转化在表面引入了羟基(-OH),从而促进了供体与 8HQ 分子上的电子接受位点之间的相互作用。DFT 计算得出的结合能(Ebinding)表明,8HQ 与 Mg(OH)₂ 的相互作用能低于 8HQ 与 MgO 的相互作用能,这表明 8HQ 分子更容易吸附在水合表面上。再加上活性位点数量的增加和表面积的增大,使得 8HQ 的表面覆盖范围更广,从而形成了稳定的片状保护层,封住了 PEO 层上的大部分孔隙。DFT 计算进一步表明,水合处理提供了多个活性位点,使其能够与 8HQ 有效接触并快速进行电子转移,为电荷转移引起的物理和化学键合创造了理想条件。这项研究表明,水合和 8HQ 处理可显著提高镁合金的耐腐蚀性,从而凸显了它们作为先进防腐涂层的潜力。
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来源期刊
Journal of Magnesium and Alloys
Journal of Magnesium and Alloys Engineering-Mechanics of Materials
CiteScore
20.20
自引率
14.80%
发文量
52
审稿时长
59 days
期刊介绍: The Journal of Magnesium and Alloys serves as a global platform for both theoretical and experimental studies in magnesium science and engineering. It welcomes submissions investigating various scientific and engineering factors impacting the metallurgy, processing, microstructure, properties, and applications of magnesium and alloys. The journal covers all aspects of magnesium and alloy research, including raw materials, alloy casting, extrusion and deformation, corrosion and surface treatment, joining and machining, simulation and modeling, microstructure evolution and mechanical properties, new alloy development, magnesium-based composites, bio-materials and energy materials, applications, and recycling.
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