Nazir Uzma, Akhter Zareen, Ali Naveed Zafar, Shah Faiz Ullah
Department of Chemistry, Quaid-i-Azam University Islamabad 45320 Pakistan
National Center for Physics, Quaid-i-Azam University Campus Islamabad Pakistan.
RSC Adv. 2019 Nov 11;9(62):36455-36470. doi: 10.1039/c9ra07105a. eCollection 2019 Nov 4.
Three novel Schiff bases, namely -(4-((4-((phenylimino)methyl)phenoxy)methoxy)benzylidene)benzenamine (UA), -(3-methoxy-4-((2-methoxy-4-((phenylimino)methyl)phenoxy)methoxy)benzylidene)benzenamine (UB), and -(3-ethyl-4-((2-ethyl-4-((phenylimino)methyl)phenoxy)methoxy)benzylidene)benzenamine (UC), were synthesized and their structures were elucidated through diverse spectroscopic techniques such as FT-IR, GC-MS, H NMR and C NMR. The corrosion inhibition effect of these Schiff bases on aluminum alloy AA2219-T6 in acidic medium was explored using weight loss, Tafel polarization, and electrochemical impedance spectroscopy. Theoretical quantum chemical calculations using density functional theory were employed to determine the adsorption site. It was found that inhibition efficiencies increase with an increase in the inhibitor concentration. Tafel plots showed that these Schiff bases function as mixed inhibitors. Adsorption of the Schiff bases on aluminum followed the Langmuir adsorption isotherm and the value of showed a dominant chemical mechanism. FT-IR and SEM techniques were used to investigate the surface morphology. The compounds showed a substantial corrosion inhibition for aluminum alloy in 0.1 M HCl at 298 K. UB and UC exhibited superior anticorrosion efficiency compared to UA originating from the electron-donating methoxy and ethoxy group substitutions, respectively. There was found to be good correlation between molecular structure and inhibition efficiencies.
合成了三种新型席夫碱,即 -(4 - ((4 - ((苯基亚氨基)甲基)苯氧基)甲氧基)亚苄基)苯胺(UA)、-(3 - 甲氧基 - 4 - ((2 - 甲氧基 - 4 - ((苯基亚氨基)甲基)苯氧基)甲氧基)亚苄基)苯胺(UB)和 -(3 - 乙基 - 4 - ((2 - 乙基 - 4 - ((苯基亚氨基)甲基)苯氧基)甲氧基)亚苄基)苯胺(UC),并通过傅里叶变换红外光谱(FT - IR)、气相色谱 - 质谱联用(GC - MS)、氢核磁共振(H NMR)和碳核磁共振(C NMR)等多种光谱技术对其结构进行了阐明。采用失重法、塔菲尔极化法和电化学阻抗谱研究了这些席夫碱在酸性介质中对铝合金AA2219 - T6的缓蚀作用。利用密度泛函理论进行理论量子化学计算以确定吸附位点。结果发现,缓蚀效率随缓蚀剂浓度的增加而提高。塔菲尔曲线表明这些席夫碱起混合型缓蚀剂的作用。席夫碱在铝表面的吸附遵循朗缪尔吸附等温线,且表明其主要为化学作用机制。利用傅里叶变换红外光谱(FT - IR)和扫描电子显微镜(SEM)技术研究了表面形貌。这些化合物在298 K下于0.1 M盐酸中对铝合金表现出显著的缓蚀作用。UB和UC分别由于供电子的甲氧基和乙氧基取代而比UA表现出更高的防腐效率。发现分子结构与缓蚀效率之间存在良好的相关性。