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官能团对芳基喹啉-3-腈在铁上的界面吸附的影响:表面相互作用机制的密度泛函理论-D3研究

Functional Group Effects on the Interfacial Adsorption of Arylquinoline-3-Carbonitriles on Iron: A DFT-D3 Investigation of Surface Interaction Mechanisms.

作者信息

Lgaz Hassane, Kaya Savas, Lee Dong-Eun, Aldalbahi Ali, Lee Han-Seung

机构信息

Innovative Durable Building and Infrastructure Research Center, Center for Creative Convergence Education, Hanyang University ERICA, 55 Hanyangdaehak-ro, Sangrok-gu, Ansan-si 15588, Gyeonggi-do, Republic of Korea.

Health Services Vocational School, Department of Pharmacy, Sivas Cumhuriyet University, 58140 Sivas, Turkey.

出版信息

Langmuir. 2025 Jan 14;41(1):350-360. doi: 10.1021/acs.langmuir.4c03611. Epub 2024 Dec 23.

Abstract

Reliable corrosion inhibition systems are crucial for extending the lifespan of industrial metal structures. Quinolines, with their high adsorption capacity and protective efficiency, are promising next-generation inhibitors. However, the impact of substitutions on their coordination with iron surfaces requires deeper understanding. Herein, we investigate the influence of various functional groups on the adsorption behavior of three 2-amino-4-arylquinoline-3-carbonitriles (AACs) on iron surfaces using first-principles density functional theory calculations. Results reveal that nitrophenyl and hydroxyphenyl significantly enhance the adsorption strength of AACs on the Fe(110) surface, facilitated by donor-acceptor interactions. Neutral molecules were more stable than their protonated counterparts. Key results show strong adsorption energies, with values ranging from -2.005 to -1.809 eV for the AACs, along with significant electron gains across carbon atoms as indicated by Bader charge analysis. These strong interactions result in notable charge redistribution and bond formation, as shown by projected density of states and electron density difference iso-surfaces. Furthermore, electron localization function analysis indicates that van der Waals interactions, influenced by multiple nitrogen atoms, play a crucial role in stabilizing the adsorbed molecules. Stronger adsorption through electron donation and retro-donation mechanisms suggests enhanced corrosion protection efficiency of these substituted quinolines. The conductor-like screening model for real solvents analysis provides complementary insights into the solvation characteristics. Overall, the findings demonstrate the specific role functional groups play in the coordination of arylquinoline-3-carbonitriles with iron surfaces.

摘要

可靠的缓蚀系统对于延长工业金属结构的使用寿命至关重要。喹啉具有高吸附能力和保护效率,是很有前景的下一代缓蚀剂。然而,取代基对其与铁表面配位的影响需要更深入的了解。在此,我们使用第一性原理密度泛函理论计算研究了各种官能团对三种2-氨基-4-芳基喹啉-3-腈(AACs)在铁表面吸附行为的影响。结果表明,硝基苯基和羟基苯基通过供体-受体相互作用显著增强了AACs在Fe(110)表面的吸附强度。中性分子比其质子化对应物更稳定。关键结果显示出很强的吸附能,AACs的吸附能值在-2.005至-1.809 eV之间,同时Bader电荷分析表明碳原子有显著的电子增益。如投影态密度和电子密度差等值面所示,这些强相互作用导致了显著的电荷重新分布和键的形成。此外,电子定域函数分析表明,受多个氮原子影响的范德华相互作用在稳定吸附分子方面起着关键作用。通过电子给予和反馈给予机制实现的更强吸附表明这些取代喹啉的缓蚀效率提高。真实溶剂的导体类筛选模型分析为溶剂化特性提供了补充见解。总体而言,研究结果证明了官能团在芳基喹啉-3-腈与铁表面配位中所起的特定作用。

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