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      Anticorrosive properties of Hexa (3-methoxy propan-1,2-diol) cyclotri-phosphazene compound for carbon steel in 3% NaCl medium: gravimetric, electrochemical, DFT and Monte Carlo simulation studies

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          Abstract

          The corrosion inhibition performance of Hexa (3-methoxy propan-1,2 diol) cyclotriphosphazene (HMC) on carbon steel in 3% NaCl solution was investigated by weight loss (WL), potentiodynamic polarization (PDP), electrochemical impedance spectroscopy (EIS) measurements, Density functional theory (DFT) and Monte Carlo (MC) simulation. The corrosion inhibition efficiency at optimum concentration (10 −3M) is 99% of HMC at 298 K. The corrosion inhibition efficiency at 10 −3 M decreases with increase in temperature. The adsorption of HMC on the surface of carbon steel obeyed Langmuir isotherm. Potentiodynamic polarization study confirmed that inhibitor anodic-type. DFT and Monte Carlo (MC) simulations based computational approaches were under taken to support the experimental findings. DFT studies revealed that HMC interact with metallic surface through donor-acceptor interactions in which the anionic parts act as electron donor (HOMO) and cationic parts behaved as electron acceptor (LUMO). The MC simulations study showed that studied HMC adsorb spontaneously on Fe (110) surface.

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                Author and article information

                Contributors
                Journal
                Heliyon
                Heliyon
                Heliyon
                Elsevier
                2405-8440
                14 March 2019
                March 2019
                14 March 2019
                : 5
                : 3
                : e01340
                Affiliations
                [a ]Laboratory of Agroresources, Polymers and Process Engineering, Department of Chemistry, Faculty of Science, Ibn Tofail University, BP 133, 14000 Kenitra, Morocco
                [b ]Laboratory of Process, Renewable Energy and Environment, Department of Process Engineering, Height School of Technology, Sidi Mohammed Ben Abdallah University, P.O. Box 2427, 30000, Fez, Morocco
                [c ]Al Azhar University-Gaza, Chemistry Department, Faculty of Science, P.O Box 1277, Gaza, Palestine
                [d ]Department of Oil and Gas, Faculty of Engineering, Bani Walid University, Bani Walid, Libya
                [e ]King Abdulaziz University, Chemistry Department, Faculty of Science, P.O Box 42805, Jeddah, 21589, Saudi Arabia
                [f ]Material Science Innovation & Modelling (MaSIM) Research Focus Area, Faculty of Natural and Agricultural Sciences, North-West University, Private Bag X2046, Mmabatho, 2735, South Africa
                [g ]Department of Chemistry, Faculty of Natural and Agricultural Sciences, School of Chemical and Physical Sciences, North-West University, Private Bag X2046, Mmabatho 2735, South Africa
                [h ]Department of Chemistry SRM Research Institute, SRM Institute of Science and Technology, Kattankulathur, Chennai, 603203, India
                Author notes
                []Corresponding author. omar.dagdag@ 123456uit.ac.ma
                [∗∗ ]Corresponding author. z.safi@ 123456alazhar.edu.ps
                Article
                S2405-8440(18)37553-4 e01340
                10.1016/j.heliyon.2019.e01340
                6423993
                30923769
                03dc8b29-e779-4940-aec5-8ea379c73f8d
                © 2019 Published by Elsevier Ltd.

                This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

                History
                : 9 November 2018
                : 26 February 2019
                : 8 March 2019
                Categories
                Article

                materials chemistry,theoretical chemistry,inorganic chemistry

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