新型喹喔啉衍生物在 1 M HCl 中对碳钢腐蚀的抑制性能

L. Chahir, F. Benhiba, N. Abad, H. Zarrok, Ismail Warad, M. Al-Noaimi, D. Benmessaoud Left, Mustapha Zertoubi, M. Allali, A. Bellaouchou, Youssef Ramli, A. Zarrouk
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引用次数: 0

摘要

本研究评估了一种新的喹喔啉衍生物--2-苯基-3-(丙-2-炔-1-氧基)喹喔啉(PYQX)--在 1 M HCl 电解液中作为碳钢(CS)缓蚀剂的效果。采用了失重测量、原子吸收光谱、电位极化、电化学阻抗光谱、扫描电子显微镜与能量色散光谱以及紫外-可见光谱来评估其缓蚀活性。利用分子动力学(MD)模拟、密度泛函理论(DFT)和福井函数研究了抑制剂分子与 CS 底物之间相互作用的电子特性。根据交流阻抗实验,所研究的抑制剂在 1 mM 和 30 °C 时的抑制效率最高可达 98.1%。朗缪尔吸附等温线模型解释了PYQX 在 CS 表面的吸附情况。斜率为 1 表示分子与底物之间有很强的相互作用,表明结合发生在特定的表面位置。为了了解吸附机制的运作,对各种热力学和活化参数进行了评估。PDP 测试表明,PYQX 是一种混合型抑制剂。计算相关性(DFT、MD 和 Fukui 指数)支持了实验结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Inhibition performance of a novel quinoxaline derivative for carbon steel corrosion in 1 M HCl
In this work, the effect of a new quinoxaline derivative, 2-phenyl-3-(prop-2-yn-1-yloxy) quinoxaline (PYQX), was evaluated as a corrosion inhibitor for carbon steel (CS) in 1 M HCl electrolyte. Weight loss measurement, atomic absorption spectroscopy, potentio­dynamic polarization, electrochemical impedance spectroscopy, scanning electron microscopy with energy dispersive spectroscopy, and UV-vis spectroscopy were employed to assess the inhibitory activity. The electronic properties of the interaction between the inhibitor molecule and the CS substrate were studied using molecular dynamics (MD) simulation, density functional theory (DFT), and Fukui functions. According to AC impedance experiments, the inhibitor under consideration showed a maximum level of 98.1 % inhibition efficiency at 1 mM and 30 °C. The Langmuir adsorption isotherm model explains the adsorption of PYQX on the CS surface. A slope of 1 denotes a strong molecule-substrate interaction, suggesting that the binding occurs at specific surface locations. To understand the functioning of the adsorption mechanism, various thermodynamic and activation parameters were evaluated. PDP tests demonstrated that PYQX functions as a mixed-type inhibitor. Computational correlations (DFT, MD, and Fukui indices) supported the experimental findings.
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