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Molecular modelling of compounds used for corrosion inhibition studies: a review

Eno E. EbensoInstitute for Nanotechnology and Water Sustainability, College of Science, Engineering and Technology, University of South Africa, Johannesburg, South AfricaChandrabhan VermaInterdisciplinary Research Center for Advanced Materials, King Fahd University of Petroleum and Minerals, Dhahran, 31261, Saudi ArabiaLukman O. OlasunkanmiDepartment of Chemistry, Faculty of Science, Obafemi Awolowo University, Ile-Ife 220005, NigeriaEkemini D. AkpanMaterial Science Innovation and Modelling Research Focus Area, Faculty of Natural and Agricultural Sciences, North-West University (Mafikeng Campus) Private Bag X2046, Mmabatho 2735, South AfricaDakeshwar Kumar VermaHassane LgazDepartment of Crop Science, College of Sanghur Life Science, Konkuk University, Seoul 05029, South KoreaLei GuoSchool of Materials and Chemical Engineering, Tongren University, Tongren, 554300, ChinaSavaş KayaFaculty of Science, Department of Chemistry, Cumhuriyet University, 58140, Sivas, TurkeyM. A. QuraishiInterdisciplinary Research Center for Advanced Materials, King Fahd University of Petroleum and Minerals, Dhahran, 31261, Saudi Arabia
2021en
ABI

Аннотация

Molecular modelling of organic compounds using computational software has emerged as a powerful approach for theoretical determination of the corrosion inhibition potential of organic compounds. Some of the common techniques involved in the theoretical studies of corrosion inhibition potential and mechanisms include density functional theory (DFT), molecular dynamics (MD) and Monte Carlo (MC) simulations, and artificial neural network (ANN) and quantitative structure-activity relationship (QSAR) modeling. Using computational modelling, the chemical reactivity and corrosion inhibition activities of organic compounds can be explained. The modelling can be regarded as a time-saving and eco-friendly approach for screening organic compounds for corrosion inhibition potential before their wet laboratory synthesis would be carried out. Another advantage of computational modelling is that molecular sites responsible for interactions with metallic surfaces (active sites or adsorption sites) and the orientation of organic compounds can be easily predicted. Using different theoretical descriptors/parameters, the inhibition effectiveness and nature of the metal-inhibitor interactions can also be predicted. The present review article is a collection of major advancements in the field of computational modelling for the design and testing of the corrosion inhibition effectiveness of organic corrosion inhibitors.

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