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Corrosion resistance of zirconium oxynitride coatings deposited via DC unbalanced magnetron sputtering and spray pyrolysis-nitriding

机译:通过直流不平衡磁控溅射和喷雾热解-氮化沉积的氧氮化锆涂层的耐腐蚀性

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ZrOxNy/ZrO2 thin films were deposited on stainless steel using two different methods: ultrasonic spray pyrolysis-nitriding (SPY-N) and the DC unbalanced magnetron sputtering technique (UBMS). Using the first method, ZrO2 was initially deposited and subsequently nitrided in an anhydrous ammonia atmosphere at 1023 K at atmospheric pressure. For UBMS, the film was deposited in an atmosphere of air/argon with a Phi air/Phi Ar flow ratio of 3.0. Structural analysis was carried out through X-ray diffraction (XRD), and morphological analysis was done through scanning electron microscopy (SEM) and atomic force microscopy (AFM). Chemical analysis was carried out using X-ray photoelectron spectroscopy (XPS). ZrOxNy rhombohedral polycrystalline film was produced with spray pyrolysis-nitriding, whereas using the UBMS technique, the oxynitride films grew with cubic Zr2ON2 crystalline structures preferentially oriented along the (2 2 2) plane. Upon chemical analysis of the surface, the coatings exhibited spectral lines of Zr3d, Ols, and N1 s, characteristic of zirconium oxynitride/zirconia. SEM analysis showed the homogeneity of the films, and AFM showed morphological differences according to the deposition technique of the coatings. Zirconium oxynitride films enhanced the stainless steel's resistance to corrosion using both techniques. The protective efficacy was evaluated using electrochemical techniques based on linear polarization (LP). The results indicated that the layers provide good resistance to corrosion when exposed to chloride-containing media. C) 2014 Elsevier B.V. All rights reserved.
机译:ZrOxNy / ZrO2薄膜使用两种不同的方法沉积在不锈钢上:超声喷雾热解-氮化(SPY-N)和直流不平衡磁控溅射技术(UBMS)。使用第一种方法,首先沉积ZrO2,然后在大气压下于1023 K的无水氨气氛中进行氮化。对于UBMS,将​​膜在空气/氩气气氛中以3.0的Phi空气/ Phi Ar流量沉积。通过X射线衍射(XRD)进行结构分析,并通过扫描电子显微镜(SEM)和原子力显微镜(AFM)进行形态分析。使用X射线光电子能谱(XPS)进行化学分析。 ZrOxNy菱面体多晶膜是通过喷雾热解-氮化法生产的,而使用UBMS技术,氧氮化物膜生长的立方Zr2ON2晶体结构优先沿(2 2 2)平面取向。在对表面进行化学分析后,涂层显示出Zr3d,Ols和N1s的光谱线,这是氧氮化锆/氧化锆的特征。 SEM分析表明膜的均匀性,AFM根据涂层的沉积技术显示出形态差异。两种技术都可以使氮氧化锆膜增强不锈钢的耐腐蚀性。使用基于线性极化(LP)的电化学技术评估保护功效。结果表明,这些层在暴露于含氯的介质中时具有良好的耐腐蚀性。 C)2014 Elsevier B.V.保留所有权利。

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