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High corrosion resistance of metal-graphene oxide-metal multilayer coatings

机译:金属 - 石墨烯氧化物 - 金属多层涂层的高耐腐蚀性

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Attributes such as chemical inertness and impermeability make graphene and graphene oxide (GO) idealmaterials for corrosion protection coatings. This work shows the application of chemically synthesised GO for corrosion protection by sandwiching it within metallic coatings to form a metal-GOmetal multilayer geometry. Two different multilayer systems were investigated: SnZn-GO-SnZn and ZnNi-GO-ZnNi multilayer coatings. Metallic coating was electrodeposited on mild steel. Followed by drop casting of as-synthesised GO over the metal deposit. The final metal layer was then electrodeposited over the drop casted GO. A control experiment was conducted by decreasing the thickness of the top metal in order to bring the GO nearer to the exposed surface. For both the systems, one pristine coating and three different multilayer coatings were electrodeposited. Total time of metal deposition was kept constant for all the coatings. Corrosion resistance of the coatings was investigated in 3 wt % NaCl solution by potentiodynamic polarisation and electrochemical impedance spectroscopy methods. The corrosion measurements clearly showed that the corrosion resistance of all the multilayer coatings was greater than the pristine metallic coating and between the multilayer coatings, as the thickness of the top metal layer decreased thereby causing the GO layer to advance towards the surface facing the corrosive medium the corrosion resistance of the multilayer coating increased. This study clearly illustrates the effect of inertness and impermeable of GO in protecting the underlying substrate against corrosion reaction.
机译:诸如化学惰性和不渗透性的属性使石墨烯和石墨烯(GO)用于腐蚀保护涂层的理想材料。这项工作表明,在金属涂层内将其夹在金属涂层内,通过将化学合成的腐蚀保护应用于金属 - 为多层几何形状。调查了两种不同的多层系统:SNZN-GO-SNZN和Znni-Go-Znni多层涂层。金属涂层在低碳钢上电沉积。然后通过抛弃物品铸造,以合成的覆盖金属沉积物。然后将最终金属层电沉积在滴水上。通过降低顶部金属的厚度来进行对照实验,以使更近的暴露表面更近。对于系统,电沉积,一种原始涂层和三种不同的多层涂层。金属沉积的总时间对所有涂层保持恒定。通过电压极化和电化学阻抗光谱法在3wt%NaCl溶液中研究了涂层的耐腐蚀性。腐蚀测量清楚地表明,随着顶部金属层的厚度降低,所有多层涂层的耐腐蚀性大于原始金属涂层以及多层涂层之间的厚度,从而导致换层朝向面向腐蚀介质的表面前进多层涂层的耐腐蚀性增加。该研究清楚地说明了惰性和不可渗透的效果保护潜在的基质免受腐蚀反应。

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