首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >The diffusion-dynamical and electrochemical effect mechanism of oriented magnetic graphene on zinc-rich coatings and the electrodynamics and quantum mechanics mechanism of electron conduction in graphene zinc-rich coatings
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The diffusion-dynamical and electrochemical effect mechanism of oriented magnetic graphene on zinc-rich coatings and the electrodynamics and quantum mechanics mechanism of electron conduction in graphene zinc-rich coatings

机译:富含锌涂层对富含磁石墨烯的扩散动态和电化学效应机理及石墨烯锌涂料中电子传导的电动力学和量子力学机理

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摘要

Magnetic graphene was prepared by modified polyol methods. Gallic acid-based epoxy resin was synthesized and adopted to enhance the dispersion of graphene. Four kinds of coating were prepared, and they were graphene coatings (G), magnetic graphene coatings (MG), magnetic graphene coatings oriented by magnetic field (MG-MF), magnetic graphene zinc-rich coatings (MG/Zn), magnetic graphene zinc-rich coatings oriented by magnetic field (MG/Zn-MF). Magnetic graphene has a larger size than the graphene, which reduced its delamination in the coatings and weakened the protective ability. After the oriented treatment by magnetic field, the parallel hierarchical arrangement of magnetic graphene significantly increased the diffusion resistance of corrosive medium and improved the corrosion resistance of the coatings. The diffusion kinetics of corrosive media in the coatings was established. However, the orientation of magnetic graphene attenuated the cathodic protection of zinc-rich coatings, due to the reduction of effective electron transport path and active interfacial zinc. The electrons lost by the anode sacrifice of zinc needed to cross two types of potential barriers in the process of migrating to the protected metal. They were metal-graphene potential barrier and graphene-graphene potential barrier. According to the calculation and modeling of electrodynamics and quantum mechanics, electron penetration through the latter barrier was less difficult than the former and graphene facilitated the transfer of electrons between metals. This was also the microscopic mechanism of graphene improving the cathodic protection of zinc-rich coatings. (C) 2019 Elsevier B.V. All rights reserved.
机译:磁石墨烯是由改性多元醇的方法制备。没食子酸基环氧树脂合成,并通过以增强的石墨烯分散体。制备四种涂层的,并且它们是通过磁场(MG-MF),磁石墨烯富锌涂料(MG / Zn)的,磁的石墨烯取向的石墨烯涂层(G),磁的石墨烯涂层(MG),磁性的石墨烯涂层富锌通过磁场(MG /锌-MF)取向涂层。磁性石墨烯具有比石墨烯,其降低了其剥离涂层中,削弱了保护能力更大的尺寸。通过磁场取向处理后,磁性石墨烯的平行分层排列显著增加腐蚀介质的扩散阻力,提高了涂层的耐腐蚀性。成立于涂层腐蚀介质的扩散动力学。然而,磁性石墨烯的取向衰减富锌涂层的阴极保护,由于有效的电子传输路径和界面活性锌的减少。通过锌的牺牲阳极失去电子需要跨越两种类型的潜在的障碍在迁移到受保护的金属的过程。他们是金属石墨烯势垒和石墨烯,石墨烯势垒。根据计算和电动力学和量子力学的建模,通过后者阻挡电子渗透较少困难比前者和石墨烯促进电子的金属之间的转移。这也是石墨烯的提高富锌涂层的阴极保护的微观机制。 (c)2019 Elsevier B.v.保留所有权利。

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