DFT and MCDS Outcome for a Comparative Analysis of NO, NO2, SO, SO2 and SO3 Gas Adsorption onto a NaMgPO4 (033) Surface

Surfaces Pub Date : 2023-11-13 DOI:10.3390/surfaces6040030
Jamal Attarki, Malika Khnifira, Wafaa Boumya, Hind Hajjaoui, Anas Mahsoune, M’hamed Sadiq, Mounia Achak, Noureddine Barka, Mohamed Abdennouri
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Abstract

The research purpose of this work is to examine the adsorption interaction of gaseous molecules (GMs), such as NO, NO2, SO, SO2, and SO3, with the surface of sodium magnesium phosphate NaMgPO4 (033), in a neutral medium, using two different computational methods: density functional theory (DFT) and Monte Carlo dynamic simulation (MCDS). Various quantum and dynamic descriptors, such as global and local quantum descriptors and the radial distribution function (RDF), are also evaluated and discussed. The data obtained revealed that the NO2 molecule has a small energy gap (0.363 eV) when compared to the other molecules, which means that it is highly reactive and is liable to adsorb, or stick, to the surface of NaMgPO4 (033). Furthermore, this NO2 molecule exhibits good adsorption in aqueous media, returning to the lowest global hardness value (0.1815 eV). MCDS predicted adsorption energies of −874.03, −819.94, −924.81, −876.33, and −977.71 kcal/mol for NO, NO2, SO, SO2, and SO3, respectively. These energies are negative, implying that adsorption occurs spontaneously. Thus, the side views indicated which SO, NO, and SO3 molecules are adsorbed in parallel to NaMgPO4 and the other SO2 and NO2 molecules are adsorbed horizontally. Eventually, the theoretical results reveal that the studied gaseous molecules interact strongly with NaMgPO4. The result obtained by radial distribution function (RDF) analysis for all complexes below 3.5 Å confirm that the adsorption is of the chemi1cal type.
NaMgPO4(033)表面吸附NO, NO2, SO, SO2和SO3气体的DFT和MCDS结果对比分析
本研究的目的是研究气态分子(GMs),如NO、NO2、SO、SO2和SO3,在中性介质中与磷酸镁钠NaMgPO4(033)表面的吸附相互作用,使用两种不同的计算方法:密度泛函数理论(DFT)和蒙特卡罗动态模拟(MCDS)。各种量子和动态描述符,如全局和局部量子描述符和径向分布函数(RDF),也进行了评估和讨论。得到的数据表明,NO2分子与其他分子相比具有较小的能隙(0.363 eV),这意味着它具有高活性,易于吸附或粘附在NaMgPO4(033)表面。此外,该NO2分子在水介质中表现出良好的吸附性能,恢复到最低的整体硬度值(0.1815 eV)。MCDS预测对NO、NO2、SO、SO2和SO3的吸附能分别为−874.03、−819.94、−924.81、−876.33和−977.71 kcal/mol。这些能量是负的,意味着吸附是自发发生的。因此,侧面图显示了哪些SO2、NO和SO3分子与NaMgPO4平行吸附,其他SO2和NO2分子水平吸附。最后,理论结果表明,所研究的气体分子与NaMgPO4有很强的相互作用。对3.5 Å以下的配合物进行径向分布函数(RDF)分析,证实了吸附是化学型的。
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
4.40
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