水热法制备用于镁合金防腐的层状双氢氧化物涂层研究进展

Lei Liu , Qiushi Deng , Paul White , Shuai Dong , Ivan S. Cole , Jie Dong , Xiao-Bo Chen
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引用次数: 5

摘要

由于层状双氢氧化物(LDH)涂层具有独特的阴离子交换能力,可以捕获侵略性阴离子(如氯化物),因此成为减轻镁(Mg)合金腐蚀的良好策略。在镁合金表面制备LDH保护涂层最常用的方法是水热处理,这是因为水热处理操作简单,产物的化学和结构丰富多样,并且通过化学键结合具有很高的涂层附着力。本文综述了热液制备LDH涂层的关键工艺参数的作用,为设计和优化具有良好镁合金防腐性能的LDH涂层提供参考。选择的关键变量包括镁合金基体的化学性质和微观结构、LDH溶液的组成、水热操作条件(主要包括溶液pH、反应温度和反应时间)以及阴离子交换后处理中使用的阴离子类型。讨论了这些变量对LDH涂层生长行为的影响。建立了LDH涂层结构与其缓蚀性能之间的关系。最后,批判性地阐述了现有工作的优势和局限性,并相应地提出了未来的研究方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hydrothermally prepared layered double hydroxide coatings for corrosion protection of Mg alloys – a critical review

Layered double hydroxide (LDH) coatings emerge as a sound strategy to mitigate corrosion of magnesium (Mg) alloys owing to their unique anion-exchange capability to entrapping aggressive anions, such as chloride. The most common approach for fabricating protective LDH coatings upon the surface of Mg alloys is hydrothermal treatment, which is ascribed to their simple manipulation, rich diversity in chemistry and structure of resultants, and high coating adhesion via chemical bonding. This article reviews the roles of key processing variables of hydrothermal manufacturing of LDH coatings to provide insights for design and optimising LDH coatings with satisfactory corrosion protection to Mg alloys. The selected key variables include chemistry and microstructure of Mg alloy substrate, components of LDH solution, hydrothermal operational conditions (mainly involving solution pH, reaction temperature and reaction time duration), and anionic types used in post anion-exchange treatment. The contributions of those variables to the growth behavior of LDH coatings are discussed. The relationships between LDH coating structure and its corrosion mitigation are also established. Finally, the strength and limitations of existing work are critically articulated and future research directions are proposed accordingly.

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CiteScore
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