Al-Gamal Abdalrahman G, Gado Walaa S, Abo El-Khair Muhammad A, Zakaria Khaled, Ragab A A, Kabel Khalid I
Egyptian Petroleum Research Institute (EPRI), Nasr City, Cairo, 11727, Egypt.
Sci Rep. 2024 Nov 16;14(1):28352. doi: 10.1038/s41598-024-78875-5.
Asphalt is widely used as a coating resin due to its excellent adhesion strength and cost-effectiveness; however, its limited corrosion protection necessitates enhancement. In this study, poly(amidoamine) (PAMAM), combined with zinc oxide (ZnO) nanoparticles, was incorporated into the asphalt matrix to improve its anticorrosive properties. Various ratios of PAMAM-ZnO nanocomposite (1, 2, 4, and 6% by weight) were added to the asphalt binder, with the materials characterized using XRD, ¹H-NMR, and SEM techniques. The 2% PAMAM-ZnO/asphalt ratio exhibited the most significant improvement, achieving a corrosion protection efficiency (η%) of 97.93%, as confirmed by Tafel analysis, and a charge transport resistance (R) of 75.91 Ω cm² according to electrochemical impedance spectroscopy (EIS) data. A combination of barrier formation and sacrificial protection drives the corrosion inhibition mechanism. The PAMAM-ZnO nanocomposite forms a highly uniform layer on the carbon steel surface, creating an effective physical barrier that prevents the penetration of corrosive agents, thereby minimizing defects like pinholes. This barrier effect is complemented by the sacrificial protection provided by the ZnO nanoparticles, which are more reactive than the underlying steel and preferentially interact with corrosive ions (e.g., chloride ions). This interaction leads to the formation of stable ZnO corrosion products, which enhance the barrier and reduce the likelihood of corrosion on the steel surface. Additionally, PAMAM facilitates the even distribution and strong adhesion of ZnO within the asphalt matrix, ensuring a durable protective layer. The synergic impact between the polymer barrier and sacrificial ZnO protection results in the exceptional corrosion resistance observed in the 2% PAMAM-ZnO/asphalt formulation, offering a promising approach for advanced anticorrosive coatings.
由于具有优异的粘附强度和成本效益,沥青被广泛用作涂层树脂;然而,其有限的防腐蚀性能需要增强。在本研究中,将聚(酰胺胺)(PAMAM)与氧化锌(ZnO)纳米颗粒相结合,掺入沥青基体中以改善其防腐性能。将不同比例(重量比为1%、2%、4%和6%)的PAMAM-ZnO纳米复合材料添加到沥青粘合剂中,并使用XRD、¹H-NMR和SEM技术对材料进行表征。2%的PAMAM-ZnO/沥青比例表现出最显著的改善,通过塔菲尔分析证实其腐蚀防护效率(η%)为97.93%,根据电化学阻抗谱(EIS)数据,电荷转移电阻(R)为75.91 Ω cm²。屏障形成和牺牲保护的结合推动了缓蚀机制。PAMAM-ZnO纳米复合材料在碳钢表面形成高度均匀的层,形成有效的物理屏障,防止腐蚀性介质渗透,从而将针孔等缺陷降至最低。这种屏障效应由ZnO纳米颗粒提供的牺牲保护补充,ZnO纳米颗粒比底层钢更具反应性,并优先与腐蚀性离子(如氯离子)相互作用。这种相互作用导致形成稳定的ZnO腐蚀产物,增强屏障并降低钢表面腐蚀的可能性。此外,PAMAM有助于ZnO在沥青基体中均匀分布并具有强粘附性,确保形成持久的保护层。聚合物屏障和牺牲性ZnO保护之间的协同作用导致在2%的PAMAM-ZnO/沥青配方中观察到优异的耐腐蚀性,为先进的防腐涂层提供了一种有前景的方法。