Enhancing corrosion resistance of magnesium alloys via combining green chicory extracts and metal cations as organic-inorganic composite inhibitor

Pubo Li , Zexi Shao , Wei Fu , Wei Ma , Kun Yang , Hai Zhou , Mangmang Gao
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引用次数: 3

Abstract

Organic inhibitors provide advantages for corrosion protection through formation of chelation layers. However, individual inhibitors have weak inhibition efficiency when they are exposed to neutral media containing chloride ions. In this study, corrosion resistance of Mg alloy AZ91D is synergistically enhanced by combining green chicory (CA) extracts with metal cations (Ca2+, Fe3+, Fe2+, and Ni2+). The Mg(OH)2 and MgO corrosion products are porous in the early stages of immersion. The main organic compounds in CA including caffeic acid (Caf) and chicoric acid (Chi), which combine with inorganic cations via chelation reaction, are adsorbed on the corroded area. The large Bader charge and adsorption energies of Chi-Calcium-Chi (CaChi) complexes determined through density functional theory calculations suggest that CaChi interacts strongly with inorganic cations. The combined organic–inorganic inhibitors can therefore be absorbed firmly on the Mg substrate to form an active inhibitory layer. Among the various investigated CA-cation mixtures, CA-Ca2+ exhibited the highest anti-corrosion effect after immersion for 120 h and a corrosion current density (icorr), corrosion potential (Ecorr), and inhibition efficiency (η) of 0.09 ± 0.03 μA·cm−2, –0.87 ± 0.03 V (vs. SCE), and 92%, respectively. This work provides an effective approach for corrosion protection through combination of organic and inorganic inhibitors.

绿菊苣提取物与金属阳离子结合作为有机-无机复合缓蚀剂增强镁合金的耐蚀性
有机抑制剂通过形成螯合层为防腐提供了优势。然而,当单个抑制剂暴露于含有氯离子的中性介质时,其抑制效率较弱。在本研究中,通过将绿菊苣(CA)提取物与金属阳离子(Ca2+、Fe3+、Fe2+和Ni2+)结合,可以协同提高镁合金AZ91D的耐腐蚀性。Mg(OH)2和MgO腐蚀产物在浸入的早期阶段是多孔的。CA中的主要有机化合物,包括咖啡酸(Caf)和菊苣酸(Chi),通过螯合反应与无机阳离子结合,吸附在腐蚀区域。通过密度泛函理论计算确定了Chi—CaChi配合物的大Bader电荷和吸附能,表明CaChi与无机阳离子有很强的相互作用。因此,组合的有机-无机抑制剂可以牢固地吸附在镁基质上,形成活性抑制层。在所研究的各种CA阳离子混合物中,CA-Ca2+在浸泡120小时后表现出最高的防腐效果,腐蚀电流密度(icorr)、腐蚀电位(Ecorr)和抑制效率(η)分别为0.09±0.03μa·cm−2、-0.87±0.03 V(vs.SCE)和92%。这项工作为有机和无机缓蚀剂的结合提供了一种有效的防腐方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
7.30
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