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Research Article

Influence of N2, N6-bis((3,5-dimethyl-1h-pyrazol-1-yl)methyl) pyridine-2,6-diamine on C35E steel corrosion in 1 M HCl medium: Experimental and theoretical studies

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Received 27 Dec 2023, Accepted 03 Apr 2024, Published online: 18 Jul 2024

References

  • Pavithra, M. K.; Venkatesha, T. V.; Kumar, M. P.; Tondan, H. C. Inhibition of Mild Steel Corrosion by Rabeprazole Sulfide. Corros. Sci. 2012, 60, 104–111. DOI: 10.1016/j.corsci.2012.04.003.
  • Hmamou, D. B.; Salghir, R.; Zarrouk, A.; Zarrok, H.; Al-Deyab, S. S.; Benali, O.; Hammouti, B. The Inhibited Effect of Phenolphthalein towards the Corrosion of C38 Steel in Hydrochloric Acid. Int. J. Electrochem. Sci. 2012, 7, 8988–9003. DOI: 10.1016/S1452-3981(23)18046-1.
  • Prabakaran, M.; Kim, S. H.; Kalaiselvi, K.; Hemapriya, V.; Chung, I. M. Highly Efficient Ligularia Fischeri Green Extract for the Protection against Corrosion of Mild Steel in Acidic Medium: Electrochemical and Spectroscopic Investigations. J. Taiwan Inst. Chem. Eng. 2016, 59, 553–562. DOI: 10.1016/j.jtice.2015.08.023.
  • Olasunkanmi, L. O.; Ebenso, E. E. Experimental and Computational Studies on Propanone Derivatives of Quinoxalin-6-yl-4, 5-Dihydropyrazole as Inhibitors of Mild Steel Corrosion in Hydrochloric Acid. J. Colloid Interface Sci. 2020, 561, 104–116. DOI: 10.1016/j.jcis.2019.11.097.
  • Rbaa, M.; Abousalem, A. S.; Rouifi, Z.; Benkaddour, R.; Dohare, P.; Lakhrissi, M.; Warad, I.; Lakhrissi, B.; Zarrouk, A. Synthesis, Antibacterial Study and Corrosion Inhibition Potential of Newly Synthesis Oxathiolan and Triazole Derivatives of 8-Hydroxyquinoline: Experimental and Theoretical Approach. Surf. Interfaces 2020, 19, 100468. DOI: 10.1016/j.surfin.2020.100468.
  • Hassani, A. E.; El Adnani, Z.; Benjelloun, A. T.; Sfaira, M.; Mcharfi, M.; Benzakour, M.; Zarrouk, A. Reactivity and Fe-Complexation Investigation by Computational Simulation Studies on Phenyltetrazole Derivatives as Mild Steel Corrosion Inhibitors in Aqueous Acidic Medium. J. Mol Liq. 2022, 349, 118169. DOI: 10.1016/j.molliq.2021.118169.
  • Benhiba, F.; Hsissou, R.; Benzekri, Z.; Belghiti, M. E.; Lamhamdi, A.; Bellaouchou, A.; Guenbour, A.; Boukhris, S.; Oudda, H.; Warad, I.; Zarrouk, A. Nitro Substituent Effect on the Electronic Behavior and Inhibitory Performance of Two Quinoxaline Derivatives in Relation to the Corrosion of Mild Steel in 1M HCl. J. Mol Liq. 2020, 312, 113367. DOI: 10.1016/j.molliq.2020.113367.
  • Arrousse, N.; Salim, R.; Kaddouri, Y.; Zarrouk, A.; Zahri, D.; Hajjaji, F. E.; Touzani, R.; Taleb, M.; Jodeh, S. The Inhibition Behavior of Two Pyrimidine-Pyrazole Derivatives against Corrosion in Hydrochloric Solution: Experimental, Surface Analysis and in Silico Approach Studies. Arabian J. Chem. 2020, 13, 5949–5965. DOI: 10.1016/j.arabjc.2020.04.030.
  • El Faydy, M.; Lakhrissi, B.; Jama, C.; Zarrouk, A.; Olasunkanmi, L. O.; Ebenso, E. E.; Bentiss, F. Electrochemical, Surface and Computational Studies on the Inhibition Performance of Some Newly Synthesized 8-Hydroxyquinoline Derivatives Containing Benzimidazole Moiety against the Corrosion of Carbon Steel in Phosphoric Acid Environment. J. Mater. Res. Technol. 2020, 9, 727–748. DOI: 10.1016/j.jmrt.2019.11.014.
  • Zarrok, H.; Salghi, R.; Zarrouk, A.; Hammouti, B.; Oudda, H.; Bazzi, L.; Bammou, L.; Al-Deyab, S. S. Investigation of the Inhibition Effect of N-1-Naphthylethylenediamine Dihydrochloride Monomethanolate on the C38 Steel Corrosion in 0.5M H2SO4. Der. Pharma Chem. 2012, 4, 407–416.
  • Zarrouk, A.; Hammouti, B.; Zarrok, H.; Warad, I. M. Bouachrine N-Containing Organic Compound As An Effective Corrosion Inhibitor For Copper In 2M HNO3: Weight Loss and Quantum Chemical Study. Der. Pharma Chem. 2011, 3, 263–271.
  • Zarrouk, A.; Messali, M.; Zarrok, H.; Salghi, R.; Al-Sheikh Ali, A.; Hammouti, B.; Al-Deyab, S. S.; Bentiss, F. Synthesis, Characterization and Comparative Study of New Functionalized Imidazolium-Based Ionic Liquids Derivatives Towards Corrosion of C38 Steel in Molar Hydrochloric Acid. Int. J. Electrochem Sci. 2012, 7, 699–7015.
  • Zarrouk, A.; Messali, M.; Aouad, M. R.; Assouag, M.; Zarrok, H.; Salghi, R.; Hammouti, B.; Chetouani, A. Some New Ionic Liquids Derivatives: Synthesis, Characterization and Comparative Study towards Corrosion of C-Steel in Acidic Media. J. Chem. Pharm. Res. 2012, 4, 3427–3436.
  • Zarrok, H.; Al Mamari, K.; Zarrouk, A.; Salghi, R.; Hammouti, B.; Al-Deyab, S. S.; Essassi, E. M.; Bentiss, F.; Oudda, H. Gravimetric and Electrochemical Evaluation of 1-Allyl-1Hindole-2,3-Dione of Carbon Steel Corrosion in Hydrochloric Acid. Int. J. Electrochem. Sci. 2012, 7, 10338–10357. DOI: 10.1016/S1452-3981(23)16281-X.
  • Zarrok H, Zarrouk A, Salghi R, Ramli Y, Hammouti B, Assouag M, Essassi EM, Oudda H, Taleb M (2012) 3,7-Dimethylquinoxalin-2-(1H)-One for Inhibition of Acid Corrosion of Carbon Steel. J Chem Pharm Res 4(12):5048–5055.
  • Tayebi, H.; Bourazmi, H.; Himmi, B.; El Assyry, A.; Ramli, Y.; Zarrouk, A.; Geunbour, A.; Hammouti, B. Combined Electrochemical and Quantum Chemical Study of New Quinoxaline Derivative as Corrosion Inhibitor for Carbon Steel in Acidic Media. Der. Pharma Chem. 2014, 6, 220–234.
  • Boudjellal, F.; Ouici, H. B.; Guendouzi, A.; Benali, O.; Sehmi, A. Experimental and Theoretical Approach to the Corrosion Inhibition of Mild Steel in Acid Medium by a Newly Synthesized Pyrazole Carbothioamide Heterocycle. J. Mol. Struct. 2020, 1199, 127051. DOI: 10.1016/j.molstruc.2019.127051.
  • Bouassiria, M.; Laabaissi, T.; Benhiba, F.; El Faydy, M.; Fakhry, H.; Oudda, H.; Assouag, M.; Touir, R.; Guenbour, A.; Lakhrissi, B.; et al. Corrosion Inhibition Effect of 5-(4-Methylpiperazine)-Methylquinoline-8-ol on Carbon Steel in Molar Acid Medium. Inorg. Chem. Commun. 2021, 123, 108366. DOI: 10.1016/j.inoche.2020.108366.
  • Desai, N. C.; Rajpara, K. M.; Joshi, V. V. Synthesis of Pyrazole Encompassing 2-Pyridone Derivatives as Antibacterial Agents. Bioorg. Med. Chem. Lett. 2013, 23, 2714–2717. DOI: 10.1016/j.bmcl.2013.02.077.
  • Chauhan, S.; Paliwal, S.; Chauhan, R. Anticancer Activity of Pyrazole via Different Biological Mechanisms. Synth. Commun. 2014, 44, 1333–1374. DOI: 10.1080/00397911.2013.837186.
  • Nayak, N.; Ramprasad, J.; Dalimba, U. New INH–Pyrazole Analogs: Design, Synthesis and Evaluation of Antitubercular and Antibacterial Activity. Bioorg. Med. Chem. Lett. 2015, 25, 5540–5545. DOI: 10.1016/j.bmcl.2015.10.057.
  • Laadam, G.; Benhiba, F.; El Faydy, M.; Titi, A.; Al-Gorair, A. S.; Alshareef, M.; Hawsawi, H.; Touzani, R.; Warad, I.; Bellaouchou, A.; et al. Anti-Corrosion Performance of Novel Pyrazole Derivative for Carbon Steel Corrosion in 1 M HCl: Computational and Experimental Studies. Inorg. Chem. Commun. 2022, 145, 109963. DOI: 10.1016/j.inoche.2022.109963.
  • Tebbji, K.; Oudda, H.; Hammouti, B.; Benkaddour, M.; El Kodadi, M.; Ramdani, A. Inhibition Effect of Two Organic Compounds Pyridine–Pyrazole Type in Acidic Corrosion of Steel. Colloids Surf A 2005, 259, 143–149. DOI: 10.1016/j.colsurfa.2005.02.030.
  • El Azzouzi, M.; Aouniti, A.; El Massaoudi, M.; Radi, S.; Hammouti, B.; Quraishi, M. A.; Bendaif, H.; E.; Ouadi, Y. Inhibition Effect of 1,1’-(Pyridine-2,6-Dihylbis(Methylene))Bis(5- Methyl-1-H-Pyrazole-3-Carboxylic Acid) on the Corrosion of Mild Steel in 1 M HCl. Part A: Experimental Study. Int. J. Corros. Scale Inhib. 2017, 6, 463–475.
  • Elmsellem, H.; Basbas, N.; Chetouani, A.; Aouniti, A.; Radi, S.; Messali, M.; Hammouti, B. Quantum Chemical Studies and Corrosion Inhibitive Properties of Mild Steel by Some Pyridine Derivatives in 1 N HCl Solution. Port. Electrochim. Acta 2014, 32, 77–108. DOI: 10.4152/pea.20140207.
  • El Adnani, Z.; Benjelloun, A. T.; Benzakour, M.; Mcharfi, M.; Sfaira, M.; Saffaj, T.; E.; Touhami, M.; Hammouti, B.; Al-Deyab, S. S.; Ebenso, E. E. DFT-Based QSAR Study of Substituted Pyridine-Pyrazole Derivatives as Corrosion Inhibitors in Molar Hydrochloric Acid. Int. J. Electrochem. Sci. 2014, 9, 4732–4746. DOI: 10.1016/S1452-3981(23)08128-2.
  • Ismaily Alaoui, K.; El Hajjaji, F.; Azaroual, M.; Taleb, M.; Chetouani, A.; Hammouti, B.; Abrigach, F.; Khoutoul, M.; Abboud, Y.; Aouniti, A.; Touzani, R. Experimental and Quantum Chemical Studies on Corrosion Inhibition Performance of Pyrazolic Derivatives for Mild Steel in Hydrochloric Acid Medium, Correlation between Electronic Structure and Inhibition Efficiency. J. Chem. Pharm. Res. 2014, 6, 63–81.
  • El Hajjaji, F.; Abrigach, F.; Hamed, O.; Hasan, A. R.; Taleb, M.; Jodeh, S.; Rodríguez-Castellón, E.; D.; Valle Martínez de Yuso, M.; Algarra, M. Corrosion Resistance of Mild Steel Coated with Orgainc Material Containing Pyrazol Moiety. Coatings 2018, 8, 330. DOI: 10.3390/coatings8100330.
  • Cisse, M. B.; Zerga, B.; El Kalai, F.; Touhami, M. E.; Sfaira, M.; Taleb, M.; Hammouti, B.; Benchat, N.; EL Kadiri, S.; Benjelloun, A. T. Two Dipodal Pyridin-Pyrazol Derivatives as Efficient Inhibitors of Mild Steel Corrosion in HCl Solution-Part I: Electrochemical Study. Surf. Rev. Lett. 2011, 18, 303–313. DOI: 10.1142/S0218625X11014783.
  • Timoudan, N.; Titi, A.; El Faydy, M.; Benhiba, F.; Touzani, R.; Warad, I.; Bellaouchou, A.; Alsulmi, A.; Dikici, B.; Bentiss, F.; Zarrouk, A. Investigation of the Mechanisms and Adsorption of a New Pyrazole Derivative against Corrosion of Carbon Steel in Hydrochloric Acid Solution: Experimental Methods and Theoretical Calculations. Colloids Surf A 2024, 682, 132771. DOI: 10.1016/j.colsurfa.2023.132771.
  • Adlani, L.; Benzbiria, N.; Titi, A.; Benhiba, F.; Warad, I.; Timoudan, N.; Kaichouh, G.; Bellaouchou, A.; Touzani, R.; Zarrok, H.; et al. Corrosion Mitigation of Carbon Steel Using Pyrazole Derivative: Correlation of Gravimetric, Electrochemical, Surface Studies with Quantum Chemical Calculations. Anal. Bioanal. Electrochem. 2023, 15, 967–987.
  • Benhiba, F.; Sebbar, N. K.; Bourazmi, H.; Belghiti, M. E.; Hsissou, R.; Hökelek, T.; Bellaouchou, A.; Guenbour, A.; Warad, I.; Oudda, H.; et al. Corrosion Inhibition Performance of 4-(Prop-2-Ynyl)-[1, 4]-Benzothiazin-3-One against Mild Steel in 1 M HCl Solution: Experimental and Theoretical Studies. Int. J. Hydrogen Energy 2021, 46, 25800–25818. DOI: 10.1016/j.ijhydene.2021.05.091.
  • El Faydy, M.; Benhiba, F.; Warad, I.; About, H.; Saoiabi, S.; Guenbour, A.; Bentiss, F.; Lakhrissi, B.; Zarrouk, A. Experimental and Theoretical Investigations of Two Quinolin-8-ol Derivatives as Inhibitors for Carbon Steel in 1 M HCl Solution. J. Phys. Chem. Solids 2022, 165, 110699. DOI: 10.1016/j.jpcs.2022.110699.
  • Laabaissi, T.; Benhiba, F.; Rouifi, Z.; Missioui, M.; Ourrak, K.; Oudda, H.; Ramli, Y.; Warad, I.; Allali, M.; Zarrouk, A. New Quinoxaline Derivative as a Green Corrosion Inhibitor for Mild Steel in Mild Acidic Medium: Electrochemical and Theoretical Studies. Int. J. Corros. Scale Inhib. 2019, 8, 241–256.
  • Kharbach, Y.; Qachchachi, F. Z.; Haoudi, A.; Tourabi, M.; Zarrouk, A.; Jama, C.; Olasunkanmi, L. O.; Ebenso, E. E.; Bentiss, F. Anticorrosion Performance of Three Newly Synthesized Isatin Derivatives on Carbon Steel in Hydrochloric Acid Pickling Environment: Electrochemical, Surface and Theoretical Studies. J. Mol Liq. 2017, 246, 302–316. DOI: 10.1016/j.molliq.2017.09.057.
  • Shao, C.; Shao, Q.; Wang, X.; Ling, J.; Guo, X.; Ning, Y.; Dai, Y.; Jia, S.; Qiao, Y.; Li, C.; Zhao, K. Supplementary Data for the Mechanism Research for Depolymerization of Cellulose Induced by Hydroxyl Radical Using GC–MS, Reaction Kinetics Simulation and Quantum Chemistry Computation. Data Brief. 2020, 29, 105329. DOI: 10.1016/j.dib.2020.105329.
  • Andersen, H. C. Molecular Dynamics Simulations at Constant Pressure and/or Temperature. J. Chem. Phys. 1980, 72, 2384–2393. DOI: 10.1063/1.439486.
  • Abousalem, A. S.; Ismail, M. A.; Fouda, A. S. A Complementary Experimental and in Silico Studies on the Action of Fluorophenyl-2, 2′-Bichalcophenes as Ecofriendly Corrosion Inhibitors and Biocide Agents. J. Mol. Liq. 2019, 276, 255–274. DOI: 10.1016/j.molliq.2018.11.125.
  • Fouda, A. S.; Ismail, M. A.; Al-Khamri, A. A.; Abousalem, A. S. Experimental, Quantum Chemical and Molecular Simulation Studies on the Action of Arylthiophene Derivatives as Acid Corrosion Inhibitors. J. Mol Liq. 2019, 290, 111178. DOI: 10.1016/j.molliq.2019.111178.
  • El Faydy, M.; Benhiba, F.; Warad, I.; Saoiabi, S.; Alharbi, A.; Alluhaybi, A. A.; Lakhrissi, B.; Abdallah, M.; Zarrouk, A. Bisquinoline Analogs as Corrosion Inhibitors for Carbon Steel in Acidic Electrolyte: Experimental, DFT, and Molecular Dynamics Simulation Approaches. J. Mol Struct. 2022, 1265, 133389. DOI: 10.1016/j.molstruc.2022.133389.
  • Singh, A. K.; Chugh, B.; Singh, M.; Thakur, S.; Pani, B.; Guo, L.; Kaya, S.; Serdaroglu, G. Hydroxy Phenyl Hydrazides and Their Role as Corrosion Impeding Agent: A Detail Experimental and Theoretical Study. J. Mol. Liq. 2021, 330, 115605. DOI: 10.1016/j.molliq.2021.115605.
  • Cherrak, K.; Khamaysa, O. M. A.; Bidi, H.; El Massaoudi, M.; Ali, I. A.; Radi, S.; El Ouadi, Y.; El-Hajjaji, F.; Zarrouk, A.; Dafali, A. Performance Evaluation of Newly Synthetized bi-Pyrazole Derivatives as Corrosion Inhibitors for Mild Steel in Acid Environment. J. Mol. Struct. 2022, 1261, 132925. DOI: 10.1016/j.molstruc.2022.132925.
  • Alamshany, Z. M.; Ganash, A. A. Synthesis, Characterization, and anti-Corrosion Properties of an 8-Hydroxyquinoline Derivative. Heliyon 2019, 5, e02895. DOI: 10.1016/j.heliyon.2019.e02895.
  • Biswas, A.; Mourya, P.; Mondal, D.; Pal, S.; Udayabhanu, G. Grafting Effect of Gum Acacia on Mild Steel Corrosion in Acidic Medium: Gravimetric and Electrochemical Study. J. Mol. Liq. 2018, 251, 470–479. DOI: 10.1016/j.molliq.2017.12.087.
  • Beniken, M.; Salim, R.; Ech–chihbi, E.; Sfaira, M.; Hammouti, B.; Touhami, M. E.; Mohsin, M. A.; Taleb, M. Adsorption Behavior and Corrosion Inhibition Mechanism of a Polyacrylamide on C–Steel in 0.5 M H2SO4: Electrochemical Assessments and Molecular Dynamic Simulation. J. Mol. Liq. 2022, 348, 118022. DOI: 10.1016/j.molliq.2021.118022.
  • Fakhry, H.; El Faydy, M.; Benhiba, F.; Bouassiria, M.; Laabaissi, T.; Allali, M.; Touir, R.; Oudda, H.; Jama, C.; Warad, I.; et al. Experimental, DFT Studies and Molecular Dynamic Simulation on the Corrosion Inhibition of Carbon Steel in 1 M HCl by Two Newly Synthesized 8-Hydroxyquinoline Derivatives. J. Indian Chem. Soc. 2022, 99, 100701. DOI: 10.1016/j.jics.2022.100701.
  • Hsissou, R.; Dagdag, O.; Abbout, S.; Benhiba, F.; Berradi, M.; El Bouchti, M.; Berisha, A.; Hajjaji, N.; Elharfi, A. Novel Derivative Epoxy Resin TGETET as a Corrosion Inhibition of E24 Carbon Steel in 1.0 M HCl Solution. Experimental and Computational (DFT and MD Simulations) Methods. J. Mol. Liq. 2019, 284, 182–192. DOI: 10.1016/j.molliq.2019.03.180.
  • El Faydy, M.; Benhiba, F.; Timoudan, N.; Lakhrissi, B.; Warad, I.; Saoiabi, S.; Guenbour, A.; Bentiss, F.; Zarrouk, A. Experimental and Theoretical Examinations of Two Quinolin-8-ol-Piperazine Derivatives as Organic Corrosion Inhibitors for C35E Steel in Hydrochloric Acid. J. Mol. Liq. 2022, 354, 118900. DOI: 10.1016/j.molliq.2022.118900.
  • Solomon, M. M.; Umoren, S. A.; Quraishi, M. A.; Salman, M. Myristic Acid Based Imidazoline Derivative as Effective Corrosion Inhibitor for Steel in 15% HCl Medium. J. Colloid Interface Sci. 2019, 551, 47–60. DOI: 10.1016/j.jcis.2019.05.004.
  • Al Garadi, W.; Jrajri, K.; El Faydy, M.; Benhiba, F.; El Ghayati, L.; Sebbar, N. K.; Essassi, E. M.; Warad, I.; Guenbour, A.; Bellaouchou, A.; et al. 4-phenyl-Decahydro-1H-1, 5-Benzodiazepin-2-One as Novel and Effective Corrosion Inhibitor for Carbon Steel in 1 M HCl Solution: A Combined Experimental and Empirical Studies. J. Indian Chem. Soc. 2022, 99, 100742. DOI: 10.1016/j.jics.2022.100742.
  • El Arrouji, S.; Karrouchi, K.; Warad, I.; Berisha, A.; Alaoui, K. I.; Rais, Z.; Radi, S.; Taleb, M.; Ansar, M.; Zarrouk, A. Multidimensional Analysis for Corrosion Inhibition by New Pyrazoles on Mild Steel in Acidic Environment: Experimental and Computational Approach. Chem. Data Collect. 2022, 40, 100885. DOI: 10.1016/j.cdc.2022.100885.
  • Benhiba, F.; Serrar, H.; Hsissou, R.; Guenbour, A.; Bellaouchou, A.; Tabyaoui, M.; Boukhris, S.; Oudda, H.; Warad, I.; Zarrouk, A. Tetrahydropyrimido-Triazepine Derivatives as anti-Corrosion Additives for Acid Corrosion: Chemical, Electrochemical, Surface and Theoretical Studies. Chem. Phys. Lett. 2020, 743, 137181. DOI: 10.1016/j.cplett.2020.137181.
  • Mourya, P.; Singh, P.; Tewari, A. K.; Rastogi, R. B.; Singh, M. M. Relationship between Structure and Inhibition Behaviour of Quinolinium Salts for Mild Steel Corrosion: Experimental and Theoretical Approach. Corros. Sci. 2015, 95, 71–87. DOI: 10.1016/j.corsci.2015.02.034.
  • Abboud, Y.; Tanane, O.; El Bouari, A.; Salghi, R.; Hammouti, B.; Chetouani, A.; Jodeh, S. Corrosion Inhibition of Carbon Steel in Hydrochloric Acid Solution Using Pomegranate Leave Extracts. Corros Eng. Sci. Technol. 2016, 51, 1–9. DOI: 10.1179/1743278215Y.0000000058.
  • Zafari, S.; Sarabi, A. A.; Movassagh, B. A Novel Green Corrosion Inhibitor Based on Task-Specific Benzimidazolium Ionic Liquid for Carbon Steel in HCl. Corros. Eng. Sci. Technol. 2020, 55, 589–601. DOI: 10.1080/1478422X.2020.1766863.
  • Ouici, H.; Tourabi, M.; Benali, O.; Selles, C.; Jama, C.; Zarrouk, A.; Bentiss, F. Adsorption and Corrosion Inhibition Properties of 5-Amino 1, 3, 4-Thiadiazole-2-Thiol on the Mild Steel in Hydrochloric Acid Medium: Thermodynamic, Surface and Electrochemical Studies. J. Electroanal. Chem. 2017, 803, 125–134. DOI: 10.1016/j.jelechem.2017.09.018.
  • Watts, J. F.; Wolstenholme, J. 2019. An Introduction to Surface Analysis by XPS and AES. John Wiley & Sons.
  • Saraswat, V.; Kumari, R.; Yadav, M. Novel Carbon Dots as Efficient Green Corrosion Inhibitor for Mild Steel in HCl Solution: Electrochemical, Gravimetric and XPS Studies. J. Phys. Chem Solids 2022, 160, 110341. DOI: 10.1016/j.jpcs.2021.110341.
  • El-Katori, E. E.; Nessim, M. I.; Deyab, M. A.; Shalabi, K. Electrochemical, XPS and Theoretical Examination on the Corrosion Inhibition Efficacy of Stainless Steel via Novel Imidazolium Ionic Liquids in Acidic Solution. J. Mol. Liq. 2021, 337, 116467. DOI: 10.1016/j.molliq.2021.116467.
  • Bourazmi, H.; Rbaa, M.; Benkaddour, R.; Bentiss, F.; Jama, C.; Costa, J.; Tabyaoui, M.; Zarrouk, A. Essential Oil of Salvia Officinalis as Novel Eco-Friendly Inhibitor for Carbon Steel in HCl Solution: Weight Loss, Electrochemical and XPS Studies. Prot. Met. Phys. Chem. Surf. 2020, 56, 438–449. DOI: 10.1134/S2070205120020045.
  • Jiang, B.; Sun, W.; Cai, J.; Chen, S.; Hou, B. Inhibition of Carbon Steel Corrosion in HCl Solution Using N-Oleyl-1, 3-Propanediamine Based Formulation. Colloids Surf A: Physicochem Eng. Asp. 2021, 624, 126824. DOI: 10.1016/j.colsurfa.2021.126824.
  • Nadi, I.; Bouanis, M.; Benhiba, F.; Nohair, K.; Nyassi, A.; Zarrouk, A.; Jama, C.; Bentiss, F. Insights into the Inhibition Mechanism of 2, 5-Bis (4-Pyridyl)-1, 3, 4-Oxadiazole for Carbon Steel Corrosion in Hydrochloric Acid Pickling via Experimental and Computational Approaches. J. Mol. Liq. 2021, 342, 116958. DOI: 10.1016/j.molliq.2021.116958.
  • Paul, P. K.; Yadav, M. Investigation on Corrosion Inhibition and Adsorption Mechanism of Triazine-Thiourea Derivatives at Mild Steel/HCl Solution Interface: Electrochemical, XPS, DFT and Monte Carlo Simulation Approach. J. Electroanal. Chem. 2020, 877, 114599. DOI: 10.1016/j.jelechem.2020.114599.
  • Saraswat, V.; Yadav, M. Improved Corrosion Resistant Performance of Mild Steel under Acid Environment by Novel Carbon Dots as Green Corrosion Inhibitor. Colloids Surf A: Physicochem. Eng. Asp. 2021, 627, 127172. DOI: 10.1016/j.colsurfa.2021.127172.
  • Singh, A.; Ansari, K. R.; Ali, I. H.; Younas, M.; Alanazi, A. K.; Alamri, A. H.; Lin, Y. Experimental, Surface and Theoretical Investigations of a New Benzodiazepine Derivative Designed for Corrosion Inhibition of Carbon Steel in 15% Hydrochloric Acid Medium under Hydrodynamic Environment. Inorg. Chem. Commun. 2023, 158, 111684. DOI: 10.1016/j.inoche.2023.111684.
  • Zheng, S.; Feng, L.; Hu, Z.; Li, J.; Zhu, H.; Ma, X. Study on the Corrosion Inhibition of Biomass Carbon Quantum Dot Self-Aggregation on Q235 Steel in Hydrochloric Acid. Arabian J. Chem. 2023, 16, 104605. DOI: 10.1016/j.arabjc.2023.104605.
  • Lebrini, M.; Benkayba, W.; Jama, C.; Bentiss, F.; Roos, C. 2-Amino-1-(4-Aminophenyl)-1H-Pyrrolo (2, 3-b) Quinoxaline-3-Carbonitrile as an Efficient Inhibitor for the Corrosion of C38 Steel in Hydrochloric Acid Solution. Int. J. Electrochem. Sci. 2020, 15, 2326–2334. DOI: 10.20964/2020.03.46.
  • Liu, X.; Sun, Y.; Lu, M.; Pan, X.; Wang, Z. Electrochemical and Surface Analytical Studies of Transition Metal Bipyridine Dicarboxylic Acid Complexes as Corrosion Inhibitors for a Mild Steel in HCl Solution. J. Adhes Sci. Technol. 2022, 36, 567–583. DOI: 10.1080/01694243.2021.1929017.
  • Verma, D. K.; Khan, F. Corrosion Inhibition of Mild Steel in Hydrochloric Acid Using Extract of glycine max Leaves. Res. Chem. Intermed. 2016, 42, 3489–3506. DOI: 10.1007/s11164-015-2227-7.
  • Fouda, A. E. A. S.; Etaiw, S. E. H.; Ismail, M. A.; Abd El-Aziz, D. M.; Eladl, M. M. Novel Naphthybithiophene Derivatives as Corrosion Inhibitors for Carbon Steel in 1 M HCl: Electrochemical, Surface Characterization and Computational Approaches. J. Mol. Liq. 2022, 367, 120394. DOI: 10.1016/j.molliq.2022.120394.
  • Ech-Chihbi, E.; Nahlé, A.; Salim, R.; Benhiba, F.; Moussaif, A.; El-Hajjaji, F.; Oudda, H.; Guenbour, A.; Taleb, M.; Warad, I.; Zarrouk, A. Computational, MD Simulation, SEM/EDX and Experimental Studies for Understanding Adsorption of Benzimidazole Derivatives as Corrosion Inhibitors in 1.0 M HCl Solution. J. Alloys. Compd. 2020, 844, 155842. DOI: 10.1016/j.jallcom.2020.155842.
  • Bedair, M. A.; Alosaimi, E. H.; Melhi, S. A Study of the Inhibitive Effect for Corrosion of Steel in 1.0 M HCl Using a New Nonionic Surfactant Based on Coumarin Moiety: Chemical, Electrochemical and Quantum Mechanics Calculations. J. Adhes. Sci. Technol. 2023, 37, 105–135. DOI: 10.1080/01694243.2021.2018864.
  • Abd El-Lateef, H. M. Corrosion Inhibition Characteristics of a Novel Salycilidene Isatin Hydrazine Sodium Sulfonate on Carbon Steel in HCl and a Synergistic Nickel Ions Additive: A Combined Experimental and Theoretical Perspective. Appl. Surf. Sci. 2020, 501, 144237. DOI: 10.1016/j.apsusc.2019.144237.
  • El-Yaktini, A.; Lachiri, A.; El-Faydy, M.; Benhiba, F.; Zarrok, H.; El-Azzouzi, M.; Zertoubi, M.; Azzi, M.; Lakhrissi, B.; Zarrouk, A. Practical and Theoretical Study on the Inhibitory Influences of New Azomethine Derivatives Containing an 8-Hydroxyquinoline Moiety for the Corrosion of Carbon Steel in 1 M HCl. Orient. J. Chem. 2018, 34, 3016–3029. DOI: 10.13005/ojc/340643.
  • Abdel-Mottaleb, M. S. A.; Ali, S. N. A New Approach for Studying Bond Rupture/Closure of a Spiro Benzopyran Photochromic Material: Reactivity Descriptors Derived from Frontier Orbitals and DFT Computed Electrostatic Potential Energy Surface Maps. Int. J. Photoenergy 2016, 2016, 1–9. 2016. DOI: 10.1155/2016/6765805.
  • Panwar, U.; Singh, S. K. Atom-Based 3D-QSAR, Molecular Docking, DFT, and Simulation Studies of Acylhydrazone, Hydrazine, and Diazene Derivatives as in-LEDGF/p75 Inhibitors. Struct. Chem. 2021, 32, 337–352. DOI: 10.1007/s11224-020-01628-3.
  • Rouifi, Z.; Rbaa, M.; Benhiba, F.; Laabaissi, T.; Oudda, H.; Lakhrissi, B.; Guenbour, A.; Warad, I.; Zarrouk, A. Preparation and anti-Corrosion Activity of Novel 8-Hydroxyquinoline Derivative for Carbon Steel Corrosion in HCl Molar: Computational and Experimental Analyses. J. Mol. Liq. 2020, 307, 112923. DOI: 10.1016/j.molliq.2020.112923.
  • Adlani, L.; Benzbiria, N.; Titi, A.; Timoudan, N.; Benhiba, F.; Warad, I.; Kaichouh, G.; Touzani, R.; Zarrok, H.; Dikici, B.; et al. Performance of a New Pyrazole Derivative in 1 M HCl on the Corrosion of Carbon Steel: Experimental, Quantum Chemical and Molecular Dynamics Simulation Studies. J. Dispersion Sci. Technol. 2024, 1–14. DOI: 10.1080/01932691.2024.2304641.
  • El Faydy, M.; Benhiba, F.; About, H.; Kerroum, Y.; Guenbour, A.; Lakhrissi, B.; Warad, I.; Verma, C.; Sherif, E.-S. M.; Ebenso, E. E.; Zarrouk, A. Experimental and Computational Investigations on the anti-Corrosive and Adsorption Behavior of 7-N, N’-Dialkyaminomethyl-8-Hydroxyquinolines on C40E Steel Surface in Acidic Medium. J. Colloid Interface Sci. 2020, 576, 330–344. DOI: 10.1016/j.jcis.2020.05.010.
  • Martínez-Araya, J. I. Why is the Dual Descriptor a More Accurate Local Reactivity Descriptor than Fukui Functions. J. Math. Chem. 2015, 53, 451–465. DOI: 10.1007/s10910-014-0437-7.
  • Benhiba, F.; Hsissou, R.; Abderrahim, K.; Serrar, H.; Rouifi, Z.; Boukhris, S.; Kaichouh, G.; Bellaouchou, A.; Guenbour, A.; Oudda, H.; et al. Development of New Pyrimidine Derivative Inhibitor for Mild Steel Corrosion in Acid Medium. J. Bio- Tribo-Corros 2022, 8, 36. DOI: 10.1007/s40735-022-00637-5.
  • El-Aouni, N.; Hsissou, R.; Safi, Z.; Abbout, S.; Benhiba, F.; El Azzaoui, J.; Haldhar, R.; Wazzan, N.; Guo, L.; Erramli, H.; et al. Performance of Two New Epoxy Resins as Potential Corrosion Inhibitors for Carbon Steel in 1MHCl Medium: Combining Experimental and Computational Approaches. Colloids Surf A: Physicochem. Eng. 2021, 626, 127066. DOI: 10.1016/j.colsurfa.2021.127066.
  • Rbaa, M.; Galai, M.; Benhiba, F.; Obot, I. B.; Oudda, H.; Ebn Touhami, M.; Lakhrissi, B.; Zarrouk, A. Synthesis and Investigation of Quinazoline Derivatives Based on 8-Hydroxyquinoline as Corrosion Inhibitors for Mild Steel in Acidic Environment: Experimental and Theoretical Studies. Ionics 2019, 25, 3473–3491. DOI: 10.1007/s11581-018-2817-7.
  • Saady, A.; Rais, Z.; Benhiba, F.; Salim, R.; Alaoui, K. I.; Arrousse, N.; Elhajjaji, F.; Taleb, M.; Jarmoni, K.; Kandri Rodi, Y.; et al. Chemical, Electrochemical, Quantum, and Surface Analysis Evaluation on the Inhibition Performance of Novel Imidazo [4, 5-b] Pyridine Derivatives against Mild Steel Corrosion. Corros Sci . 2021, 189, 109621. DOI: 10.1016/j.corsci.2021.109621.
  • Aslam, J.; Aslam, R.; Alrefaee, S. H.; Mobin, M.; Aslam, A.; Parveen, M.; Hussain, C. M. Gravimetric, Electrochemical, and Morphological Studies of an Isoxazole Derivative as Corrosion Inhibitor for Mild Steel in 1M HCl. Arab. J. Chem. 2020, 13, 7744–7758. DOI: 10.1016/j.arabjc.2020.09.008.

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