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Ni-graphene oxide composite coatings: Optimum graphene oxide for enhanced corrosion resistance

机译:镍-氧化石墨烯复合涂层:最佳的氧化石墨烯,可增强耐腐蚀性

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摘要

Ni-Graphene oxide (GO) composite coatings were electrodeposited over mild steel substrate. The coatings exhibited compact and crack free morphology. Incorporation of GO facilitated grain growth along low energy (111) and (200) atomic planes without any significant alteration in the crystallite size. Compositional analysis suggested uniform distribution of GO within the coating for lower GO concentration. Whereas for higher GO concentrations, agglomeration and non-uniform distribution of GO within the coating microstructure was noticed. Corrosion behaviour of coatings was studied by electrochemical impedance spectroscopy and potentiodynamic polarisation techniques. It was observed that the corrosion rate of the coating initially decreased with the addition of GO. After an optimum GO concentration which produced the lowest corrosion rate, further addition of GO resulted in increase in the corrosion rate. The initial decrease in the corrosion rate was attributed to the coating growth along the low energy low index planes and the impermeability of the GO to the electroactive media. The increase in the corrosion rate beyond the optimum was attributed to the GO agglomeration which caused inhomogeneous distribution of GO in the coating and relatively non-uniform coating morphology.
机译:镍氧化石墨烯(GO)复合涂层被电沉积在低碳钢基底上。涂层表现出致密和无裂纹的形态。 GO的引入促进了沿低能量(111)和(200)原子平面的晶粒生长,而晶粒尺寸没有任何显着改变。成分分析表明,GO中的GO分布均匀,从而降低了GO的浓度。而对于较高的GO浓度,在涂层微结构内注意到GO的团聚和不均匀分布。通过电化学阻抗谱和电位动力学极化技术研究了涂层的腐蚀行为。观察到,随着GO的加入,涂层的腐蚀速率开始降低。在产生最低腐蚀速率的最佳GO浓度后,进一步添加GO会导致腐蚀速率增加。腐蚀速率的最初下降归因于沿低能量低折射率平面的涂层生长以及GO对电活性介质的不渗透性。腐蚀速率的增加超过了最佳值,这归因于GO的团聚,这导致了GO在涂层中的分布不均匀以及涂层形态相对不均匀。

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