Insight into the corrosion inhibition mechanism and adsorption behavior of aldehyde derivatives for mild steel in 1.0 M HCl and 0.5 M H2SO4
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[1] M. Taleb,et al. Adsorption behavior and corrosion inhibition mechanism of a polyacrylamide on C-steel in 0.5 M H2SO4: Electrochemical assessments and molecular dynamic simulation , 2021, Journal of Molecular Liquids.
[2] M. Cherkaoui,et al. A detailed investigation on the corrosion inhibition effect of by newly synthesized Pyran derivative on mild steel in 1.0 M HCl: Experimental, surface morphological (SEM-EDS, DRX& AFM) and computational analysis (DFT & MD simulation) , 2021, Journal of Molecular Liquids.
[3] A. Zarrouk,et al. The influence of low concentration of 2-(5-methyl-2-nitro-1H-imidazol-1-yl)ethyl benzoate on corrosion brass in 0.5 M H2SO4 solution , 2021 .
[4] S. Kaya,et al. New imidazolium ionic liquids as ecofriendly corrosion inhibitors for mild steel in hydrochloric acid (1 M): Experimental and theoretical approach , 2021 .
[5] A. Abdellaoui,et al. Valorization of Cinnamon Essential Oil as Eco-Friendly Corrosion Inhibitor for Mild Steel in 1.0 M Hydrochloric Acid Solution , 2021 .
[6] M. Taleb,et al. Origanum compactum essential oil as a green inhibitor for mild steel in 1 M hydrochloric acid solution: Experimental and Monte Carlo simulation studies , 2021 .
[7] M. Taleb,et al. Experimental, Density Functional Theory, and Dynamic Molecular Studies of Imidazopyridine Derivatives as Corrosion Inhibitors for Mild Steel in Hydrochloric Acid , 2021 .
[8] M. Ebn Touhami,et al. Anticorrosion properties of 5,5′-dithiobis-(2-nitrobenzoic acid) and sodium sulfite compounds for aluminum alloy 2024-T3 in saline solution: Electrochemical, characterization and theoretical investigations , 2021 .
[9] Mentha viridis oil as a green effective corrosion inhibitor for mild steel in 1 M HCl medium , 2020, International Journal of Corrosion and Scale Inhibition.
[10] M. Taleb,et al. Computational, MD simulation, SEM/EDX and experimental studies for understanding adsorption of benzimidazole derivatives as corrosion inhibitors in 1.0 M HCl solution , 2020 .
[11] S. Kaya,et al. Insights into corrosion inhibition mechanism of mild steel in 1 M HCl solution by quinoxaline derivatives: electrochemical, SEM/EDAX, UV-visible, FT-IR and theoretical approaches , 2020 .
[12] M. Taleb,et al. Development and validation of QSPR models for corrosion inhibition of carbon steel by some pyridazine derivatives in acidic medium , 2020, Heliyon.
[13] D. S. Chauhan,et al. Electrochemical and theoretical insights on the adsorption and corrosion inhibition of novel pyridinium-derived ionic liquids for mild steel in 1 M HCl , 2020 .
[14] Tongtong Han,et al. Enhanced corrosion inhibition of carbon steel by pyridyl gemini surfactants with different alkyl chains , 2020 .
[15] M. Yadav,et al. Computational and electrochemical analysis on quinoxalines as corrosion inhibitors for mild steel in acidic medium , 2020 .
[16] H. Aghaie,et al. Rosuvastatin drug as a green and effective inhibitor for corrosion of mild steel in HCl and H2SO4 solutions , 2019, Journal of Materials Research and Technology.
[17] J. Majumdar,et al. Study of intergranular corrosion mechanism of fiber laser welded 3-mm-thick Hastelloy C-276 sheet , 2019, Corrosion Science.
[18] Y. Chen,et al. Experimental and theoretical studies of benzaldehyde thiosemicarbazone derivatives as corrosion inhibitors for mild steel in acid media , 2019, Journal of Molecular Structure.
[19] M. Taleb,et al. An Investigation into Quantum Chemistry and Experimental Evaluation of Imidazopyridine Derivatives as Corrosion Inhibitors for C-Steel in Acidic Media , 2019, Journal of Bio- and Tribo-Corrosion.
[20] Yan‐Chao Wu,et al. Highly effective inhibition of mild steel corrosion in HCl solution by using pyrido[1,2-a]benzimidazoles , 2019, New Journal of Chemistry.
[21] N. C. Murmu,et al. Effect of stereochemical conformation into the corrosion inhibitive behaviour of double azomethine based Schiff bases on mild steel surface in 1 mol L−1 HCl medium: An experimental, density functional theory and molecular dynamics simulation study , 2019, Corrosion Science.
[22] E. Ebenso,et al. Corrosion inhibition performance of newly synthesized 5-alkoxymethyl-8-hydroxyquinoline derivatives for carbon steel in 1 M HCl solution: experimental, DFT and Monte Carlo simulation studies. , 2018, Physical chemistry chemical physics : PCCP.
[23] Y. Abboud,et al. Quantum chemical and QSPR studies of bis-benzimidazole derivatives as corrosion inhibitors by using electronic and lipophilic descriptors , 2018 .
[24] M. Taleb,et al. Experimental and computational studies on the inhibition performance of the organic compound “2-phenylimidazo [1,2-a]pyrimidine-3-carbaldehyde” against the corrosion of carbon steel in 1.0 M HCl solution , 2017 .
[25] K. Vanasundari,et al. Spectroscopic investigation, vibrational assignments, Fukui functions, HOMO-LUMO, MEP and molecular docking evaluation of 4 – [(3, 4 – dichlorophenyl) amino] 2 – methylidene 4 – oxo butanoic acid by DFT method , 2017 .
[26] P. Shetty,et al. Electrochemical measurements for the corrosion inhibition of mild steel in 1 M hydrochloric acid by using an aromatic hydrazide derivative , 2017 .
[27] R. Prakash,et al. Electrochemical investigation of Irbesartan drug molecules as an inhibitor of mild steel corrosion in 1 M HCl and 0.5 M H2SO4 solutions , 2017 .
[28] N. C. Murmu,et al. Evaluating electronic structure of quinazolinone and pyrimidinone molecules for its corrosion inhibition effectiveness on target specific mild steel in the acidic medium: A combined DFT and MD simulation study , 2016 .
[29] Yongming Tang,et al. Novel benzimidazole derivatives as corrosion inhibitors of mild steel in the acidic media. Part II: Theoretical studies , 2014 .
[30] Wenpo Li,et al. Investigation of 1-butyl-3-methyl-1H-benzimidazolium iodide as inhibitor for mild steel in sulfuric acid solution , 2014 .
[31] R. Solmaz. Investigation of adsorption and corrosion inhibition of mild steel in hydrochloric acid solution by 5-(4-Dimethylaminobenzylidene)rhodanine , 2014 .
[32] Additi Roychowdhury,et al. Molecular Dynamics and Density Functional Theory Study on Corrosion Inhibitory Action of Three Substituted Pyrazine Derivatives on Steel Surface , 2014 .
[33] Sumit Kumar,et al. Experimental and Quantum Chemical Studies on the Corrosion Inhibition Performance of Benzimidazole Derivatives for Mild Steel in HCl , 2013 .
[34] H. Fu,et al. Inhibition of the corrosion of steel in HCl, H2SO4 solutions by bamboo leaf extract , 2012 .
[35] A. Kokalj. On the HSAB based estimate of charge transfer between adsorbates and metal surfaces , 2012 .
[36] M. Ibrahim,et al. Corrosion and corrosion control of mild steel in concentrated H2SO4 solutions by a newly synthesized glycine derivative , 2011 .
[37] E. Ebenso,et al. Computational Simulation and Statistical Analysis on the Relationship Between Corrosion Inhibition Efficiency and Molecular Structure of Some Phenanthroline Derivatives on Mild Steel Surface , 2011, International Journal of Electrochemical Science.
[38] H. Fu,et al. Triazolyl blue tetrazolium bromide as a novel corrosion inhibitor for steel in HCl and H2SO4 solutions , 2011 .
[39] A. Mohamad,et al. Electrochemical and quantum chemical calculations on 4,4-dimethyloxazolidine-2-thione as inhibitor for mild steel corrosion in hydrochloric acid , 2010 .
[40] I. Obot,et al. Adsorption properties and inhibition of mild steel corrosion in sulphuric acid solution by ketoconazole: Experimental and theoretical investigation , 2010 .
[41] Y. Liu,et al. Phenyl-substituted amino thiadiazoles as corrosion inhibitors for copper in 0.5 M H2SO4 , 2009 .
[42] K. F. Khaled,et al. Investigation of the inhibiting action of O-, S- and N-dithiocarbamato(1,4,8,11-tetraazacyclotetradecane)cobalt(III) complexes on the corrosion of iron in HClO4 acid , 2005 .
[43] G. Trabanelli. 1991 Whitney Award Lecture: Inhibitors—An Old Remedy for a New Challenge , 1991 .