泮托拉唑在酸性介质中作为低碳钢缓蚀剂效果的实验和理论研究

Avni Berisha
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引用次数: 4

摘要

采用动电位极化、量子化学计算、蒙特卡罗和分子动力学模拟等方法研究了低碳钢在1 M硫酸水溶液中存在和不存在泮托拉唑时的腐蚀行为。电位动力学实验表明,由于该分子在低碳钢表面的吸附,它具有混合抑制剂的作用。这项研究的目的是利用理论计算来更好地理解抑制是如何起作用的。用蒙特卡罗模拟计算了所测化合物在Fe(110)表面的吸附行为。在此基础上,利用密度泛函理论(DFT),特别是PBE泛函理论,研究了分子结构与所研究化学物质缓蚀性能之间的关系。采用具有周期边界条件(PBC)的分子力学方法更精确地计算了泮托拉唑(三种不同质子化态)铁的吸附能。预测的理论参数与实验数据吻合较好,这对理解该化合物的缓蚀机理有很大帮助。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Experimental and Theoretical Investigation of the Efficacy of Pantoprazole as a Corrosion Inhibitor for Mild Steel in an Acidic Medium
The corrosion behavior of mild steel in a 1 M aqueous sulfuric acid medium in the presence and absence of the drug Pantoprazole was investigated using potentiodynamic polarization and quantum chemical calculations as well as Monte Carlo and molecular dynamic simulations. The potentiodynamic experiments indicated that this molecule, as a result of its adsorption on a mild steel surface, functioned as a mixed inhibitor. The goal of the study was to use theoretical calculations to acquire a better understanding of how inhibition works. The adsorption behavior of the examined compounds on the Fe (1 1 0) surface was calculated using a Monte Carlo simulation. Furthermore, the molecules were studied using density functional theory (DFT), especially the PBE functional, to determine the relationship between the molecular structure and the corrosion inhibition behavior of the chemical under research. The adsorption energies of Pantoprazole (in its three different protonation states) iron were calculated more precisely using molecular mechanics with periodic boundary conditions (PBC). The predicted theoretical parameters were found to be in agreement with the experimental data, which was a considerable help in understanding the corrosion inhibition mechanism displayed by this chemical.
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CiteScore
6.30
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