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首页> 外文期刊>Journal of Materials Engineering and Performance >Improvement of Electrochemical Surface Properties in Steel Substrates Using a Nanostructured CrN/AlN Multilayer Coating
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Improvement of Electrochemical Surface Properties in Steel Substrates Using a Nanostructured CrN/AlN Multilayer Coating

机译:使用纳米结构的CrN / AlN多层涂层改善钢基材中的电化学表面性能

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摘要

Improvement of corrosion properties on AISI D3 steel surfaces coated with [CrN/AlN] n multilayered system deposited for various periods (Λ) via magnetron sputtering has been studied in this work exhaustively. For practical effects compared were the latter properties with CrN and AlN single layers deposited with the same conditions as the multilayered systems. The coatings were characterized in terms of crystal phase; chemical composition, micro-structural, and electrochemical properties by x-ray diffractometry, energy dispersive x-ray, Fourier transforming infrared spectroscopy, atomic force microscopy, scanning electron microscopy, Tafel polarization curves, and electrochemical impedance spectroscopy. Corrosion evolution was observed via optical microscopy. Results from x-ray diffractometry analysis revealed that the crystal structure of [CrN/AlN] n multilayered coatings has an NaCl-type lattice structure and hexagonal structure (wurtzite-type) for CrN and AlN, respectively, i.e., it was made non-isostructural multilayered. The best behavior was obtained by the multilayered period: Λ = 60 nm (50 bilayers), showing the maximum corrosion resistance (polarization resistance of 1.18 KΩ, and corrosion rate of 1.02 mpy). Those results indicated an improvement of anticorrosive properties, compared to the CrN/AlN multilayer system with 1 bilayer at 98 and 80%, respectively. Furthermore, the corrosion resistance of steel AISI D3 is improved beyond 90%. These improvement effects in multilayered coatings could be attributed to the number of interfaces that act as obstacles for the inward and outward diffusions of ion species, generating an increment in the energy or potential required for translating the corrosive ions across the coating/substrate interface. Moreover, the interface systems affect the means free path on the ions toward the metallic substrate, due to the decreasing of the defects presented in the multilayered coatings.
机译:在这项工作中,已经详尽地研究了改善在AISI D3钢表面上通过磁控溅射沉积[CrN / AlN] n 多层体系沉积的腐蚀性能的方法。对于实际效果,比较了在与多层系统相同的条件下沉积的CrN和AlN单层的后一种性能。涂层的特征在于结晶相。 X射线衍射,能量色散X射线,傅立叶变换红外光谱,原子力显微镜,扫描电子显微镜,Tafel极化曲线和电化学阻抗光谱的化学组成,微观结构和电化学性能。通过光学显微镜观察到腐蚀的发展。 X射线衍射分析的结果表明,[CrN / AlN] n 多层涂层的晶体结构分别具有CrN和AlN的NaCl型晶格结构和六方结构(纤锌矿型),即,将其制成非结构多层。通过多层周期可获得最佳性能:Λ= 60 nm(50个双层),显示出最大的耐腐蚀性(极化电阻为1.18KΩ,腐蚀速率为1.02 mpy)。这些结果表明,与分别具有98%和80%的1个双层的CrN / AlN多层体系相比,防腐性能得到了改善。此外,AISI D3钢的耐腐蚀性提高了90%以上。多层涂层中的这些改善效果可以归因于充当离子种类向内和向外扩散的障碍的界面数量,从而产生了使腐蚀性离子在涂层/基材界面上平移所需的能量或电势的增加。此外,由于减少了多层涂层中存在的缺陷,界面系统影响了离子上朝向金属基板的平均自由程。

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