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在盐溶液介质中对不锈钢具有优异防腐性能的芳纶-氧化锆纳米复合涂层

Aramid-Zirconia Nanocomposite Coating With Excellent Corrosion Protection of Stainless Steel in Saline Media.

作者信息

Nazeer Ahmed Abdel, Al Sagheer Fakhreia, Bumajdad Ali

机构信息

Chemistry Department, Faculty of Science, Kuwait City, Kuwait.

Electrochemistry Laboratory, Physical Chemistry Department, National Research Centre, Giza, Egypt.

出版信息

Front Chem. 2020 May 19;8:391. doi: 10.3389/fchem.2020.00391. eCollection 2020.

Abstract

Resistance to stainless steel corrosion in marine-based industries requires more research into materials with an improved surface and enhanced protection by utilizing surface coatings. Herein, a thermally stable aramid-zirconia nanocomposite has been successfully prepared using the sol-gel method to produce a zirconia network-structure bonded to the polymer chain. Using thermal gravimetric analysis (TGA), the residue mass of zirconia retained after the thermal degradation of aramid-zirconia film was determined and found to be 10% by mass. The investigated nanocomposite (using 10% zirconia) was coated on the stainless-steel surface through a facile and effective spin coating method and its protection was examined in saline solution (3.5% NaCl). The aramid-zirconia nanocomposite coating (Ar-Zr10) was found to provide an outstanding corrosion resistance to steel surfaces which led to protecting it against the corrosive marine environment. The electrochemical impedance (EIS) measurements were carried out to evaluate steel resistance against dissolution in chloride solution in the absence and presence of the investigated coatings showed a corrosion protection efficiency of 99.3% using Ar-Zr10 compared to 92.1% using pure aramid. Moreover, the potentiodynamic polarization (PDP) plots showed a pronounced decrease in the corrosion current values which confirmed the formation of a passive layer which mitigated the corrosion reaction and ions diffusion. The water contact angle of stainless-steel coated with pure aramid and the aramid-zirconia was found to be 84.2° and 125°, respectively, confirming the hydrophobic nature of the hybrid coating Ar-Zr10. On the other hand, the results achieved through the electrochemical and surface techniques were used to clarify the protection mechanism. The aramid-zirconia nanocomposite coating showed a remarkable protection performance by controlling the charge transfer at the interface between the steel alloy and the electrolyte which prevented the alloy dissolution.

摘要

在海洋工业中,提高不锈钢的耐腐蚀性能需要对具有改进表面和利用表面涂层增强保护的材料进行更多研究。在此,通过溶胶 - 凝胶法成功制备了一种热稳定的芳纶 - 氧化锆纳米复合材料,以生成与聚合物链键合的氧化锆网络结构。使用热重分析(TGA)测定了芳纶 - 氧化锆薄膜热降解后残留的氧化锆质量,发现其质量分数为10%。通过简便有效的旋涂方法将所研究的纳米复合材料(使用10%的氧化锆)涂覆在不锈钢表面,并在盐溶液(3.5% NaCl)中检测其防护性能。发现芳纶 - 氧化锆纳米复合涂层(Ar - Zr10)能为钢表面提供出色的耐腐蚀性,从而保护其免受海洋腐蚀环境的侵害。进行了电化学阻抗(EIS)测量,以评估在有无所研究涂层的情况下钢在氯化物溶液中的抗溶解性能。结果表明,与使用纯芳纶时的92.1%相比,使用Ar - Zr10时的腐蚀防护效率为99.3%。此外,动电位极化(PDP)曲线显示腐蚀电流值显著降低,这证实了形成了钝化层,减轻了腐蚀反应和离子扩散现象。发现涂有纯芳纶和芳纶 - 氧化锆的不锈钢的水接触角分别为84.2°和125° , 证实了混合涂层Ar - Zr10的疏水性质。另一方面,通过电化学和表面技术获得的结果用于阐明保护机制 .芳纶 -氧化锆纳米复合涂层通过控制钢合金与电解质之间界面处的电荷转移,表现出卓越的保护性能,从而防止了合金溶解 .

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a4cf/7248555/38a4ddd34e6e/fchem-08-00391-g0001.jpg

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