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Microstructure-Electrochemical Behaviour Correlation for Nico-GO and Nico-Mwcnts Composite Coatings

机译:Nico-Go和Nico-MWCNTS复合涂层的微观结构 - 电化学行为相关性

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NiCo coatings are widely used in sensors, actuators and as protective coatings. Recent studies have shown that addition of foreign particles like Al_2O_3, SiC and TiO_2 promotes grain randomization and refinement resulting in improved corrosion resistance performance. In the present work, NiCo coating containing varying amount of graphene oxide (GO) and multi-walled carbon nanotubes (MWCNTs) were electrodeposited over mild steel substrate. Microstructure and corrosion behavior of these composite coatings were then studied as a function of the volume fraction of the secondary additives. NiCo-GO & NiCo-CNT composite coating were characterized using x-ray diffraction (XRD), scanning electron microscopy (SEM) and energy dispersive x-ray spectroscopy (EDS) for phase identification, morphology and composition respectively. Potentiodynamic polarization studies and electrochemical impedance spectroscopy (EIS) studies in 3.5 wt.% NaCl solution revealed that the corrosion behavior of the coatings was very sensitive to the concentration of GO/MWCNTs in the coating matrix. With continuous increase in the amount of GO/CNT in the coatings, the corrosion resistance first increased followed by a decrease, indicating possibility of an optimum with respect to the amount of the additives for achieving high corrosion resistance performance. On analyzing the electrolytic bath solution, we observed that nickel ions (Ni~(+2)) showed preferential deposition onto the graphene oxide sheets resulting in a compositional heterogeneity near and far from the graphene-metal interface in the electrodeposited coating microstructure. This compositional segregation led to a change in the relative abundance of low angle and high angle boundaries in the coating microstructure. Electron backscattered diffraction (EBSD) technique was used to study the type of grain boundaries, strain in the grain and average grain size (area) of the samples (prepared using focused ion beam FIB). The data revealed that the samples exhibiting maximum corrosion resistance (optimum CNT/GO concentrations) also had the highest fraction of low angle grain boundaries (LAGBs) with no additional strain in the matrix. Further increase in GO concentration resulted in more grains with high misorientation angle. In case of CNTs addition, the coatings were found to be hydrophobic in nature with a grain growth along low energy (111) direction.
机译:Nico涂层广泛​​用于传感器,致动器和保护涂层。最近的研究表明,添加外来颗粒,如AL_2O_3,SiC和TiO_2促进谷物随机化和细化,导致改善耐腐蚀性能。在本作工作中,含有不同量的石墨烯(GO)和多壁碳纳米管(MWCNT)的Nico涂层在低碳钢基板上被电沉积。然后将这些复合涂层的微观结构和腐蚀行为作为二次添加剂的体积分数的函数进行研究。使用X射线衍射(XRD),扫描电子显微镜(SEM)和能量分散X射线光谱(EDS)分别用于相位鉴定,形态和组成的X射线 - Go和Nico-CNT复合涂层。电位动力学偏振研究和电化学阻抗光谱(EIS)在3.5重量%中的研究。%NaCl溶液显示,涂层的腐蚀行为对涂层基质中的Go / MwCnts的浓度非常敏感。随着涂层中的去/ CNT量的连续增加,耐腐蚀性首先增加,然后减少,表明相对于用于实现高耐腐蚀性能的添加剂的量的最佳可能性。在分析电解浴溶液中,我们观察到镍离子(Ni〜(+2))显示在石墨烯片上的优先沉积,从而在电沉积的涂布微观结构中靠近和远离石墨烯 - 金属界面的组成异质性。该组成偏析导致涂层微观结构中的低角度和高角度边界的相对丰度的变化。电子反向散射衍射(EBSD)技术用于研究样品的晶粒界限,晶粒和平均晶粒尺寸(面积)中的粒度(使用聚焦​​离子束FIB制备)。数据显示,具有最大耐腐蚀性(最佳CNT / GO浓度)的样品也具有最高的低角度晶界(LAGBS)的最高分数,而在基质中没有额外的应变。 GO浓度的进一步增加导致更多的粒度具有高杂乱的角度。在添加CNT的情况下,发现涂层的性质本质上具有沿低能量(111)方向的晶粒生长。

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