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Original Articles

Inhibition efficiency of pyrazinecarboxylic acid on mild steel in acidic environment

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Pages 1426-1446 | Received 07 Aug 2020, Accepted 09 Nov 2020, Published online: 25 Nov 2020

References

  • Al-Azawi KF, Mohammed IM, Al-Baghdadi SB, et al. Experimental and quantumchemical simulations on the corrosion inhibition of mild steel by 3-((5-(3,5-dinitrophenyl)-1, 3,4-thiadiazol-2-yl) imino) indolin-2-one. Results Phys. 2018;9:278–283.
  • Zakir Hossain SM, Kareem SA, Alshater AF, et al. Effects of cinnamaldehyde as an eco friendly corrosion inhibitor on mild steel in aerated NaCl solutions. Arab J Sci Eng. 2020;45(1):229–239.
  • Ghames A, Douadi T, Issaadi S, et al. Theoretical and experimental studies of adsorption characteristics of newly synthesized Schiff bases and their evaluation as corrosion inhibitors for mild steel in 1 M HCl. Int J Electrochem Sci. 2017;12:4867–4897.
  • Yüce O. Corrosion inhibition behavior of Robinia pseudoacacia leaves extract as a eco-friendly inhibitor on mild steel in acidic media. Met Mater Int. 2020;26(4):456–466.
  • Kumari N, Kumari Paul P, Gope L, et al. Studies on anticorrosive action of synthesized indolines on mild steel in 15% HCl solution. J Adhes Sci Technol. 2017;31(14):1524–1544.
  • Khattabi M, Benhiba F, Tabti S, et al. Performance and computational studies of two soluble pyran derivatives as corrosion inhibitors for mild steel in HCl. J Mol Struct. 2019;1196:231–244.
  • Albrakaty RH, Wazzan NA, Obot IB. Theoretical study of the mechanism of corrosion inhibition of carbon steel in acidic solution by 2-aminobenzothaizole and 2-mercatobenzothiazole. Int J Electrochem Sci. 2018;13:3535–3554.
  • Özcan M. AC impedance measurement of cystine adsorption at mild steel/sulfuric acid interface as corrosion inhibitor. J Solid State Electrochem. 2008;12(12):1653–1661.
  • Sığırcık G. Investigation of 2,2′-diaminodiethyl disulfide for mild steel protection in acid solution. J Mol Struct. 2020;1212:128120.
  • Wazzan NA, Obot I, Kaya S. Theoreticalmodeling andmolecular level insights into the corrosion inhibition activity of 2-amino-1,3,4-thiadiazole and its 5-alkyl derivatives. J Mol Liq. 2016;221:579–602.
  • Obot IB, Ebenso EE, Kabanda MM. Metronidazole as environmentally safe corrosion inhibitor formild steel in 0.5M HCl: experimental and theoretical investigation. J Environ Chem Eng. 2013;1(3):431–439.
  • Njoku DI, Li Y, Lgaz H, et al. Dispersive adsorption of Xylopia aethiopica constituents on carbon steel in acid-chloride medium: a combined experimental and theoretical approach. J Mol Liq. 2018;249:371–388.
  • Abdeli M, Parvini Ahmadi N, Khosroshahi RA. Influence of bis-(2-benzothiazolyl)-disulfide on corrosion inhibition of mild steel in hydrochloric acid media. J Solid State Electrochem. 2011;15(9):1867–1873.
  • Tansuğ G, Tüken T, Sığırcık G, et al. Methyl 3-((2-mercaptophenyl) imino) butanoate as an effective inhibitor against steel corrosion in HCl solution. Ionics. 2015;21(5):1461–1475.
  • Zhang D, Gao L, Zhou G. Inhibition of copper corrosion in aerated hydrochloric acid solution by heterocyclic compounds containing a mercapto group. Corros Sci. 2004;46(12):3031–3040.
  • Shulman GP, Bauman AJ. Organic acid sealants for anodized aluminum a new method for corrosion protection. Met Finish. 1995;93(7):16–19.
  • Elmorsi MA, Hassanein AM. Corrosion inhibition of copper by heterocyclic compounds. Corros Sci. 1999;41(12):2337–2352.
  • Zhang HH, Chen Y. Experimental and theoretical studies of benzaldehyde thiosemicarbazone derivatives as corrosion inhibitors for mild steel in acid media. J Mol Struct. 2019;1177:90–100.
  • Lamaka SV, Zheludkevich ML, Yasakau KA, et al. High effective organic corrosion inhibitors for 2024 aluminium alloy. Electrochim Acta. 2007;52(25):7231–7247.
  • Branzoi V, Golgovici F, Branzoi F. Aluminium corrosion in hydrochloric acid solutions and the effect of some organic inhibitors. Mater Chem Phys. 2003;78(1):122–131.
  • Fleischmann M, Hill IR, Mengoli G, et al. Comparative study of the efficiency of some organic inhibitors for the corrosion of copper in aqueous chloride media using electrochemical and surface enhanced Raman scattering techniques. Electrochim Acta. 1985;30(7):879–888.
  • Abdallah M, Sobhi M, Altass HM. Corrosion inhibition of aluminum in hydrochloric acid by pyrazinamide derivatives. J Mol Liq. 2016;223:1143–1150.
  • Farag AA, Awad Al T. The enhancing of 2-pyrazinecarboxamide inhibition effect on the acid corrosion of carbon steel in presence of iodide ions. J Ind Eng Chem. 2015;21:627–634.
  • Umoren SA, Li Y, Wang FH. Electrochemical study of corrosion inhibition and adsorption behaviour for pureiron by polyacrylamide in H2SO4: synergistic effect of iodide ions. Corros Sci. 2010;52(5):1777–1786.
  • Masoud MS, Awad MK, Shaker MA, et al. The role of structural chemistry in the inhibitive performance of some aminopyrimidines on the corrosion of steel. Corros Sci. 2010;52(7):2387–2396.,
  • Patru Samide A, Bibicu I. Kinetics corrosion process of carbon steel inhydrochloric acid in absence and presence of 2-(cyclohexylaminomercapto)benzothiazole. Surf Interface Anal. 2008;40(5):944–952.
  • Tang YM, Zhang F, Hu SX, et al. Novel benzimidazole derivatives as corrosion inhibitors of mild steel in the acidic media. PartI: Gravimetric, electrochemical, SEM and XPS studies. Corros Sci. 2013;74:271–282.,
  • Aljourani J, Raeissi K, Golozar MA. Benzimidazole and its derivatives as corrosion inhibitors for mild steel in 1M HCl solution. Corros Sci. 2009;51(8):1836–1843.
  • Bentiss F, Jama C, Mernari B, et al. Corrosion control of mild steel using 3,5-bis(4-methoxyphenyl)-4-amino-1,2,4-triazole in normal hydrochloric acid medium. Corros Sci. 2009;51(8):1628–1635.
  • Hassan HH, Abdelghani E, Amin MA. Inhibition of mild steel corrosion in hydrochloric acid solution by triazole derivatives Part I. Polarization and EIS studies. Electrochim Acta. 2007;52(22):6359–6366.
  • Abboud Y, Abourriche A, Saffaj T, et al. The inhibition of mild steel corrosion in acidic medium by 2,2'-bis(benzimidazole). Appl Surf Sci. 2006;252(23):8178–8184.
  • Yıldız R. An electrochemical and theoretical evaluation of 4,6-diamino-2-pyrimidinethiol as a corrosion inhibitor for mild steel in HCl solutions. Corros Sci. 2015;90:544–553.
  • Sığırcık G, Tüken T, Erbil M. Assessment of the inhibition efficiency of 3,4-diaminobenzonitrile against the corrosion of steel. Corros Sci. 2016;102:437–445.
  • Singh DK, Ebenso EE, Singh MK, et al. Non-toxic Schiff bases as efficient corrosion inhibitors for mild steel in 1 M HCl: Electrochemical, AFM, FE-SEM and theoretical studies. J Mol Liq. 2018;250:88–99.
  • Tansuğ G, Kicir N, Demirkol O, et al. Elife Sultan Giray, Tunc Tuken, synthesis and application of phenylcarbamodithioate compound for steel protection. J Adhes Sci Technol. 2016;30(18):1984–2000.
  • Luo X, Ci C, Li J, et al. 4-aminoazobenzene modified natural glucomannan as a green eco-friendly inhibitor for the mild steel in 0.5 M HCl solution. Corros Sci. 2019;151:132–142.
  • Bockris JO, Reddy AKN, Gamboa-Aldeco M. Modern electrochemistry, 2nd ed. New York: Kluwer Academic/Plenum Publishers; 2000.
  • Xu B, Liu Y, Yin X, et al. Experimental and theoretical study of corrosion inhibition of 3-pyridinecarbozalde thiosemicarbazone for mild steel in hydrochloric acid. Corros Sci. 2013;74:206–213.,
  • Li X, Deng S, Fu H. Three pyrazine derivatives as corrosion inhibitors for steel in 1.0 M H2SO4 solution. Corros Sci. 2011;53(10):3241–3247.
  • Bouklah M, Attayibat A, Kertit S, et al. A pyrazine derivative as corrosion inhibitor for steel in sulphuric acid solution. Appl Surf Sci. 2005;242(3–4):399–406.
  • Sığırcık G, Tüken T, Erbil M. Inhibition efficiency of aminobenzonitrile compounds on steel surface. Appl Surf Sci. 2015;324:232–239.
  • Kelly RG, Scully JR, Shoesmith DW. Electrochemical techniques in corrosion science and engineering. New York (NY): Marcel Dekker Inc; 2003.
  • Yurt A, Balaban A, Ustün Kandemir S, et al. Investigation on some Schiff bases as HCl corrosion inhibitors for carbon steel. Mater Chem Phys. 2004;85(2-3):420–426.
  • Yıldız R, Döner A, Doğan T, et al. Experimental studies of 2-pyridinecarbonitrile as corrosion inhibitor for mild steel in hydrochloric acid solution. Corros Sci. 2014;82:125–132.
  • Verma C, Quraishi MA, Lgaz H, et al. Adsorption and anticorrosion behaviour of mild steel treated with 2-((1H-indol-2-yl)thio)-6-amino-4-phenylpyridine-3,5-dicarbonitriles in a hydrochloric acid solution: Experimental and computational studies. J Mol Liq. 2019;283:491–506.
  • He X, Mao J, Ma Q, et al. Corrosion inhibition of perimidine derivatives for mild steel in acidic media: electrochemical and computational studies. J Mol Liq. 2018;269:260–268.
  • Saranya J, Sowmiya M, Sounthari P, et al. N-heterocycles as corrosion inhibitors for mild steel in acid medium. J Mol Liq. 2016;216:42–52.
  • Yıldız R. Adsorption and inhibition effect of 2,4-diamino-6-hydroxypyrimidine for mild steel corrosion in HCl medium: experimental and theoretical investigation. Ionics. 2019;25(2):859–870.
  • Obi-Egbedi NO, Obot IB, El-Khaiary MI. Quantum chemical investigation and statistical analysis of the relationship between corrosion inhibition efficiency and molecular structure of xanthene and its derivatives on mild steel in sulphuric acid. J Mol Struct. 2011;1002(1–3):86–96.
  • Keleşoğlu R, Yıldız İ, Dehri 1. (2-Hydroxyethyl)-2-imidazolidinone as corrosion inhibitor of mild steel in 0.5 M HCl solution: thermodynamic, electrochemical and theoretical studies. J Adhes Sci Technol. 2019;33(18):2010–2030.
  • Musa AY, Kadhum AAH, Mohamad AB, et al. Electrochemical and quantum chemical calculations on 4,4-dimethyloxazolidine-2-thione as inhibitor for mild steel corrosion in hydrochloric acid. J Mol Struct. 2010;969(1–3):233–237.
  • Yıldız R, Doğru Mert B. Theoretical and experimental investigations on corrosion control of mild steel in hydrochloric acid solution by 4-aminothiophenol. Anti-Corros Methods Mater. 2019;66:127–137.
  • John Xavier R, Dinesh P. Spectroscopic (FTIR, FT-Raman, 13C and 1H NMR) investigation, molecular electrostatic potential, polarizability and first-order hyperpolarizability, FMO and NBO analysis of 1-methyl-2-imidazolethiol. Spectrochim Acta A Mol Biomol Spectrosc. 2014;118:999–1011.
  • Morsi RE, Khamis EA, Al-Sabagh AM. Polyaniline nanotubes: facile synthesis, electrochemical, quantum chemical characteristics and corrosion inhibition efficiency. J Taiwan Inst Chem Eng. 2016;60:573–581.
  • Zheng XW, Zhang ST, Li WP, et al. Investigation of 1- butyl-3-methyl-1H-benzimidazolium iodide as inhibitor for mild steel in sulfuric acid solution. Corros Sci. 2014;80:383–392.
  • Cao ZY, Tang YM, Cang H, et al. Novel benzimidazole derivatives as corrosion inhibitors of mild steel in the acidic media. Part II: theoretical studies. Corros Sci. 2014;83:292–298.
  • Gece G. The use of quantum chemical methods in corrosion inhibitor studies. Corros Sci. 2008;50(11):2981–2992.
  • Sayin K, Karakaş D. Quantum chemical studies on the some inorganic corrosion inhibitors. Corros Sci. 2013;77:37–45.
  • Mourya P, Singh P, Tewari AK, et al. Relationship between structure and inhibition behaviour of quinolinium salts for mild steel corrosion: experimental and theoretical approach. Corros Sci. 2015;95:71–87.
  • Kosari A, Moayed MH, Davoodi A, et al. Electrochemical and quantum chemical assessment of two organic compounds from pyridine derivatives as corrosion inhibitors for mild steel in HCl solution under stagnant condition and hydrodynamic flow. Corros Sci. 2014;78:138–150.
  • Obi-Egbedi NO, Obot IB. Inhibitive properties, thermodynamic and quantum chemical studies of alloxazine on mild steel corrosion in H2SO4. Corros Sci. 2011;53(1):263–275.
  • Behpour M, Ghoreishi SM, Khayatkashani M, et al. The effect of two oleo-gum resin exudate from Ferula assa-foetida and Dorema ammoniacum on mild steel corrosion in acidic media. Corros Sci. 2011;53(8):2489–2501.

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