In-depth study of a newly synthesized imidazole derivative as an eco-friendly corrosion inhibitor for mild steel in 1 M HCl: Theoretical, electrochemical, and surface analysis perspectives

IF 1.3 4区 化学 Q4 ELECTROCHEMISTRY International Journal of Electrochemical Science Pub Date : 2024-08-25 DOI:10.1016/j.ijoes.2024.100768
Azzeddine Belkheiri , Khadija Dahmani , Zakia Aribou , Otmane Kharbouch , Errahmany Nordine , Abderrazzak El Moutaouakil Ala Allah , Mouhsine Galai , Mohamed Ebn Touhami , Mohammad K. Al-Sadoon , Basheer M. Al-Maswari , Youssef Ramli
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Abstract

The present study is concerned with the corrosion inhibition and adsorption behaviour of a series of novel imidazole derivatives. The compounds under investigation are 5,5-diphenyl-3-propyl-2-(propylthio)-3,5-dihydro-4 H-imidazol-4-one (AM3) and 3-allyl-2-(allylthio)-5,5-diphenyl-3,5-dihydro-4 H-imidazol-4-one (AM6). The objective of this study is to evaluate the efficacy of 5,5-diphenyl-3,5-dihydro-4 H-imidazol-4-one (AM6) as a corrosion inhibitor on mild steel immersed in a 1.0 M hydrochloric acid medium. This comprehensive study assesses the efficacy of these derivatives through a range of electrochemical and spectroscopic analysis techniques. Additionally, polarisation curves, electrochemical impedance spectroscopy and advanced computer simulations were employed to evaluate the efficacy and inhibition mechanism of imidazole derivatives, thereby facilitating a more profound understanding of their anticorrosive capacity. The results obtained from potentiodynamic polarisation (PDP), electrochemical frequency modulation (EFM) and electrochemical impedance spectroscopy (EIS) measurements demonstrate that the inhibition efficiency increases with increasing imidazole derivative concentration. Conversely, an inverse relationship is observed between inhibition efficiency and temperature. The thermodynamic parameters ΔG°_ads and ΔH°_ads corroborate the conclusion that the adsorption process is predominantly chemical in nature. Scanning electron microscopy (SEM), energy dispersive X-ray spectroscopy (EDX) and X-ray photoelectron spectroscopy (XPS) were employed to characterise the surface morphology. The maximum protection afforded by imidazole derivatives was 95.2 % and 93 % for compounds AM3 and AM6, respectively. Polarisation curves indicated that imidazole derivatives exhibited mixed inhibition behaviour. Surface analysis demonstrated that imidazole derivatives were effectively adsorbed onto the carbon surface, thereby significantly reducing acid damage. This finding was corroborated by DFT calculations, as well as Monte Carlo (MC) and molecular dynamics (MD) simulations. These simulations provided a comprehensive insight into the adsorption of imidazole and its protonated form onto the carbon surface, offering valuable insight into the corrosion inhibition mechanism.

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深入研究一种新合成的咪唑衍生物作为 1 M HCl 中低碳钢的环保型缓蚀剂:理论、电化学和表面分析视角
本研究涉及一系列新型咪唑衍生物的缓蚀和吸附行为。研究的化合物是 5,5-二苯基-3-丙基-2-(丙硫基)-3,5-二氢-4 H-咪唑-4-酮(AM3)和 3-烯丙基-2-(烯丙基硫基)-5,5-二苯基-3,5-二氢-4 H-咪唑-4-酮(AM6)。本研究旨在评估 5,5-二苯基-3,5-二氢-4 H-咪唑-4-酮(AM6)作为缓蚀剂对浸入 1.0 M 盐酸介质中的低碳钢的功效。这项综合研究通过一系列电化学和光谱分析技术评估了这些衍生物的功效。此外,还采用了极化曲线、电化学阻抗光谱和先进的计算机模拟来评估咪唑衍生物的功效和抑制机理,从而有助于更深入地了解它们的防腐能力。电位极化(PDP)、电化学频率调制(EFM)和电化学阻抗谱(EIS)测量的结果表明,随着咪唑衍生物浓度的增加,抑制效率也随之增加。相反,抑制效率与温度之间存在反比关系。热力学参数 ΔG°_ads 和 ΔH°_ads 证实了吸附过程主要是化学过程的结论。扫描电子显微镜(SEM)、能量色散 X 射线光谱(EDX)和 X 射线光电子能谱(XPS)被用来表征表面形态。对于化合物 AM3 和 AM6,咪唑衍生物提供的最大保护率分别为 95.2% 和 93%。极化曲线表明,咪唑衍生物表现出混合抑制行为。表面分析表明,咪唑衍生物能有效地吸附在碳表面,从而大大减少了酸的破坏。这一发现得到了 DFT 计算以及蒙特卡罗(MC)和分子动力学(MD)模拟的证实。这些模拟全面揭示了咪唑及其质子化形式在碳表面的吸附过程,为了解腐蚀抑制机理提供了宝贵的资料。
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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来源期刊
CiteScore
3.00
自引率
20.00%
发文量
714
审稿时长
2.6 months
期刊介绍: International Journal of Electrochemical Science is a peer-reviewed, open access journal that publishes original research articles, short communications as well as review articles in all areas of electrochemistry: Scope - Theoretical and Computational Electrochemistry - Processes on Electrodes - Electroanalytical Chemistry and Sensor Science - Corrosion - Electrochemical Energy Conversion and Storage - Electrochemical Engineering - Coatings - Electrochemical Synthesis - Bioelectrochemistry - Molecular Electrochemistry
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