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Electrochemical behaviour of chromium-graphene composite coating

机译:铬 - 石墨烯复合涂层的电化学行为

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This work illustrates the role of graphene in enhancing the corrosion resistant properties of chromium-graphene composite coating when compared to the corrosion resistant properties of pure chromium coating containing ZnO nanoparticles. Chromium based coatings have been used extensively due to their various useful attributes such as corrosion and wear resistance and enhanced surface finish. In this work, Cr and Cr-graphene composite coatings were electrodeposited over mild steel substrate using Cr(III) plating bath. To deposit the coatings, an electrodeposition method was also adopted due to its attributes such as low cost, less equipment intensive methodology, accuracy of reproduction and suitability for large scale surface modification. Three different coatings were produced: (a) Cr coating containing ZnO nanoparticles (C), (b) Cr coating containing ZnO nanoparticles deposited using formic acid (C-F) and (c) Cr coating containing ZnO nanoparticles and graphene deposited using formic acid (C-FG). Graphene used in the deposition process was produced from the electrochemical exfoliation of graphite in sodium lauryl sulphate (SLS) electroactive media. ZnO nanoparticles were synthesized using the precipitation method followed by calcination. Microstructural characterization of the coatings revealed that the coating 'C' contained large cracks. Addition of formic acid (in the coating C-F) noticeably reduced the cracks in the coating which now also contained hillock structures. Addition of graphene (in coating C-FG) further enhanced the coating morphology which now contained negligible cracks and increased hillock structures completely covering its surface. Diffraction analysis revealed that the addition of graphene also altered the texture of the chromium coatings. Potentiodynamic polarization and electrochemical impedance spectroscopic analysis revealed that the change in the morphology and microstructure of the deposit due to the addition of graphene substantially enhanced the corrosion resistance of the C-FG coating when compared to both C and C-F coatings.
机译:该工作说明了石墨烯在加强铬 - 石墨烯复合涂层的耐腐蚀性与含有ZnO纳米颗粒的腐蚀性能相比的作用。由于其各种有用的属性,如腐蚀和耐磨性和增强的表面光洁度,因此铬基涂层已被广泛使用。在这项工作中,使用Cr(III)电镀浴在温和的钢基板上电沉积Cr和Cr-石墨烯复合涂层。为了沉积涂层,还采用了电沉积方法,因为其属性,例如低成本,设备密集型方法,再现精度和大规模表面改装的适宜性。制备了三种不同的涂层:(a)含有ZnO纳米颗粒(c),(b)Cr涂层的Cr涂层,含有含有甲酸(C)Cr涂层的ZnO纳米颗粒和含有甲酸的石墨烯(C)Cr涂层(C)(C) -fg)。在沉积过程中使用的石墨烯由石墨酸钠(SLS)电活性介质中石墨的电化学剥离产生。使用沉淀法合成ZnO纳米粒子,然后进行煅烧。涂层的微观结构表征显示涂层C'含有大裂缝。添加甲酸(在涂层C-F中)明显减少涂层中的裂缝,该涂层现在还含有Hillock结构。添加石墨烯(涂层C-FG)进一步增强了涂层形态,该形态现在包含可忽略不计的裂缝和完全覆盖其表面的山丘结构。衍射分析显示,加入石墨烯也改变了铬涂层的质地。电位动力学和电化学阻抗光谱分析显示,与C-F涂层相比,由于添加石墨烯的添加基本上提高了C-FG涂层的耐腐蚀性的形态和微观结构的变化。

著录项

  • 来源
    《RSC Advances 》 |2016年第67期| 共8页
  • 作者单位

    Indian Inst Sci Dept Mat Engn Bangalore Karnataka India;

    Indian Inst Sci Dept Mat Engn Bangalore Karnataka India;

    Indian Inst Sci Dept Mat Engn Bangalore Karnataka India;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学 ;
  • 关键词

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