Recent developments in sustainable corrosion inhibition using ionic liquids: a review


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References


  1. R.D. Rogers, K.R. Seddon, Ionic liquids—solvents of the future? Science 302 (2003) 792–793.

  2. M.J. Earle, K.R. Seddon, Ionic liquids. Green solvents for the future, Pure Appl. Chem. 72 (2000) 1391–1398.

  3. T. Welton, Ionic liquids in green chemistry, Green Chem. 13 (2011) 225.

  4. F.J. Romeli, C.D. Wilfred, S.M. Saadeh, Z.J. Yasseen, F.A. Sharif, H. Shawish, W. Hough, M. Smiglak, H. Rodriguez, R. Swatloski, Ionic liquids: industrial applications

to green chemistry, Ionic liquids: Industrial applications to green chemistry. (2009) 14.

  1. P. Hapiot, C. Lagrost, Electrochemical reactivity in room-temperature ionic liquids, Chem. Rev. 108 (2008) 2238–2264.

  2. N.V. Plechkova, K.R. Seddon, Applications of ionic liquids in the chemical industry, Chem. Soc. Rev. 37 (2008) 123–150.

  3. Z. Lei, B. Chen, Y.-M. Koo, D.R. MacFarlane, Introduction: ionic liquids, ACS Publica- tions, 2017.

  4. C. Verma, A. Mishra, S. Chauhan, P. Verma, V. Srivastava, M. Quraishi, E.E. Ebenso, Dissolution of cellulose in ionic liquids and their mixed cosolvents: a review, Sus- tain. Chem. Pharm. 13 (2019), 100162.

  5. C.M. Gordon, New developments in catalysis using ionic liquids, Appl. Catal. A Gen. 222 (2001) 101–117.

  6. F. Shi, Y. Gu, Q. Zhang, Y. Deng, Development of ionic liquids as green reaction media and catalysts, Catal. Surv. Jpn. 8 (2004) 179–186.

  7. J.S. Wilkes, Properties of ionic liquid solvents for catalysis, J. Mol. Catal. A Chem. 214 (2004) 11–17.

  8. M. Deetlefs, K.R. Seddon, M. Shara, Predicting physical properties of ionic liquids, Phys. Chem. Chem. Phys. 8 (2006) 642–649.

  9. R.D. Rogers, K.R. Seddon, S. Volkov, Green Industrial Applications of Ionic Liquids, Springer Science & Business Media, 2012.

  10. A.A. Toledo Hijo, G.J. Maximo, M.C. Costa, E.A. Batista, A.J. Meirelles, Applications of ionic liquids in the food and bioproducts industries, ACS Sustain. Chem. Eng. 4 (2016) 5347–5369.

  11. J. Lu, F. Yan, J. Texter, Advanced applications of ionic liquids in polymer science, Prog. Polym. Sci. 34 (2009) 431–448.

  12. C. Verma, E.E. Ebenso, M. Quraishi, Ionic liquids as green and sustainable corrosion inhibitors for metals and alloys: an overview, J. Mol. Liq. 233 (2017) 403–414.

  13. Y. Li, S. Zhang, Q. Ding, D. Feng, B. Qin, L. Hu, The corrosion and lubrication proper- ties of 2-Mercaptobenzothiazole functionalized ionic liquids for bronze, Tribol. Int. 114 (2017) 121–131.

  14. O.A. Al-Rashed, A.A. Nazeer, Ionic liquids with superior protection for mild steel in acidic media: effects of anion, cation, and alkyl chain length, J. Mol. Liq. 288 (2019), 111015.




  1. S.A. Ahmed, M.I. Awad, I.I. Althagafi, H.M. Altass, M. Morad, A. Alharbi, R.J. Obaid, Newly synthesized indolium-based ionic liquids as unprecedented inhibitors for the corrosion of mild steel in acid medium, J. Mol. Liq. 291 (2019), 111356.

  2. A. Yousefi, S. Javadian, N. Dalir, J. Kakemam, J. Akbari, Imidazolium-based ionic liq- uids as modulators of corrosion inhibition of SDS on mild steel in hydrochloric acid solutions: experimental and theoretical studies, RSC Adv. 5 (2015) 11697–11713.

  3. L.F.C. Souto, B.G. Soares, Polyaniline/carbon nanotube hybrids modified with ionic liquids as anticorrosive additive in epoxy coatings, Progress in Organic Coatings 143 (2020), 105598.

  4. S. Yesudass, L.O. Olasunkanmi, I. Bahadur, M.M. Kabanda, I. Obot, E.E. Ebenso, Ex- perimental and theoretical studies on some selected ionic liquids with different cations/anions as corrosion inhibitors for mild steel in acidic medium, J. Taiwan Inst. Chem. Eng. 64 (2016) 252–268.

  5. S. Cao, D. Liu, P. Zhang, L. Yang, P. Yang, H. Lu, J. Gui, Green Brönsted acid ionic liq- uids as novel corrosion inhibitors for carbon steel in acidic medium, Sci. Rep. 7 (2017) 1–14.

  6. Y. Qiang, S. Zhang, L. Guo, X. Zheng, B. Xiang, S. Chen, Experimental and theoretical studies of four allyl imidazolium-based ionic liquids as green inhibitors for copper corrosion in sulfuric acid, Corros. Sci. 119 (2017) 68–78.

  7. A.E. Visser, R.D. Rogers, Room-temperature ionic liquids: new solvents for f- element separations and associated solution chemistry, J. Solid State Chem. 171 (2003) 109–113.

  8. J.H. Larson, P.C. Frost, G.A. Lamberti, Variable toxicity of ionic liquid–forming chemicals to Lemna mino and the influence of dissolved organic matter, Environ- mental Toxicology and Chemistry: An International Journal 27 (2008) 676–681.

  9. H. Zhao, S. Xia, P. Ma, Use of ionic liquids as ‘green’ solvents for extractions, Journal of Chemical Technology & Biotechnology: International Research in Process, Envi- ronmental & Clean Technology 80 (2005) 1089–1096.

  10. J.D. Holbrey, W.M. Reichert, R. Reddy, R. Rogers, Ionic liquids as green solvents: progress and prospects, ACS Symposium Series, American Chemical Society, Washington, DC 2003, pp. 121–133.

  11. Z. Yang, C. Sun, C. Zhang, S. Zhao, M. Cai, Z. Liu, Q. Yu, Amino acid ionic liquids as anticorrosive and lubricating additives for water and their environmental impact, Tribol. Int. 106663 (2020).

  12. S. Lian, C. Song, Q. Liu, E. Duan, H. Ren, Y. Kitamura, Recent advances in ionic liquids-based hybrid processes for CO2 capture and utilization, J. Environ. Sci., 99 281–295.

  13. A.O. Leite, W.S. Araújo, I.C. Margarit, A.N. Correia, P.d. Lima-Neto, Evaluation of the anticorrosive properties of environmental friendly inorganic corrosion inhibitors pigments, J. Braz. Chem. Soc. 16 (2005) 756–762.

  14. G. Gece, Drugs: a review of promising novel corrosion inhibitors, Corros. Sci. 53 (2011) 3873–3898.

  15. P.B. Raja, M.G. Sethuraman, Natural products as corrosion inhibitor for metals in corrosive media—a review, Mater. Lett. 62 (2008) 113–116.

  16. E.E. Oguzie, Evaluation of the inhibitive effect of some plant extracts on the acid corrosion of mild steel, Corros. Sci. 50 (2008) 2993–2998.

  17. C. Verma, E.E. Ebenso, I. Bahadur, M. Quraishi, An overview on plant extracts as en- vironmental sustainable and green corrosion inhibitors for metals and alloys in ag- gressive corrosive media, J. Mol. Liq. 266 (2018) 577–590.

  18. R. Pathak, P. Mishra, Drugs as corrosion inhibitors: a review, International journal of Science and Research 5 (2016) 671–677.

  19. K. Xhanari, M. Finšgar, M.K. Hrnčič, U. Maver, Ž. Knez, B. Seiti, Green corrosion in- hibitors for aluminium and its alloys: a review, RSC Adv. 7 (2017) 27299–27330.

  20. E.E. Ebenso, T. Arslan, F. Kandemirli, N. Caner, I. Love, Quantum chemical studies of some rhodanine azosulpha drugs as corrosion inhibitors for mild steel in acidic medium, Int. J. Quantum Chem. 110 (2010) 1003–1018.

  21. S.A. Umoren, U.M. Eduok, Application of carbohydrate polymers as corrosion inhib- itors for metal substrates in different media: a review, Carbohydr. Polym. 140 (2016) 314–341.

  22. C. Verma, J. Haque, M. Quraishi, E.E. Ebenso, Aqueous phase environmental friendly organic corrosion inhibitors derived from one step multicomponent reactions: a review, J. Mol. Liq. 275 (2019) 18–40.

  23. C. Verma, L. Olasunkanmi, E.E. Ebenso, M. Quraishi, Substituents effect on corrosion inhibition performance of organic compounds in aggressive ionic solutions: a re- view, J. Mol. Liq. 251 (2018) 100–118.

  24. C. Verma, M. Quraishi, E.E. Ebenso, Microwave and ultrasound irradiations for the synthesis of environmentally sustainable corrosion inhibitors: an overview, Sus- tain. Chem. Pharm. 10 (2018) 134–147.

  25. E. a Badr, H.H. Hefni, S. Shafek, S.M. Shaban, Synthesis of anionic chitosan surfac- tant and application in silver nanoparticles preparation and corrosion inhibition of steel, Int. J. Biol. Macromol. 157 (2020) 187–201.

  26. C. Verma, M. Quraishi, L. Olasunkanmi, E.E. Ebenso, L-Proline-promoted synthesis of 2-amino-4-arylquinoline-3-carbonitriles as sustainable corrosion inhibitors for mild steel in 1 M HCl: experimental and computational studies, RSC Adv. 5 (2015) 85417–85430.

  27. C. Verma, L. Olasunkanmi, I. Obot, E.E. Ebenso, M. Quraishi, 5-Arylpyrimido-[4, 5-b] quinoline-diones as new and sustainable corrosion inhibitors for mild steel in 1 M HCl: a combined experimental and theoretical approach, RSC Adv. 6 (2016) 15639–15654.

  28. M.S. Wong, The Convention for the Protection of the Marine Environment of the North-East Atlantic (the ‘OSPAR Convention’)(and Annexes I, II, III, IV), Elgar Ency- clopedia of Environmental Law, Edward Elgar Publishing Limited, 2017 189–198.

  29. V. Bakir, Policy agenda setting and risk communication: Greenpeace, Shell, and is- sues of trust, Harvard International Journal of Press/Politics 11 (2006) 67–88.


N. van der Hoeven, A.A. Gerritsen, Effects of chlorpyrifos on individuals and popu- lations of Daphnia pulex in the laboratory and field, Environmental Toxicology and Chemistry: An International Journal 16 (1997) 2438–2447.

  1. S. Hasenbein, S.P. Lawler, J. Geist, R.E. Connon, The use of growth and behavioral endpoints to assess the effects of pesticide mixtures upon aquatic organisms, Eco- toxicology 24 (2015) 746–759.

  2. T. Tišler, J. Zagorc-Končan, Acute and chronic toxicity of arsenic to some aquatic or- ganisms, Bull. Environ. Contam. Toxicol. 69 (2002) 421–429.

  3. D. Hasson, H. Shemer, A. Sher, State of the art of friendly “green” scale control in- hibitors: a review article, Ind. Eng. Chem. Res. 50 (2011) 7601–7607.

  4. M. Nendza, R. Kühne, A. Lombardo, S. Strempel, G. Schüürmann, PBT assessment under REACH: screening for low aquatic bioaccumulation with QSAR classifications based on physicochemical properties to replace BCF in vivo testing on fish, Sci. Total Environ. 616 (2018) 97–106.

  5. K. Bittermann, L. Linden, K.-U. Goss, Screening tools for the bioconcentration po- tential of monovalent organic ions in fish, Environ Sci Process Impacts 20 (2018) 845–853.

  6. D. Watkinson, Measuring effectiveness of washing methods for corrosion control of archaeological iron: problems and challenges, Corros. Eng. Sci. Technol. 45 (2010) 400–406.

  7. F. Ropital, Current and future corrosion challenges for a reliable and sustainable de- velopment of the chemical, refinery, and petrochemical industries, Mater. Corros. 60 (2009) 495–500.

  8. M. Goyal, S. Kumar, I. Bahadur, C. Verma, E.E. Ebenso, Organic corrosion inhibitors for industrial cleaning of ferrous and non-ferrous metals in acidic solutions: a re- view, J. Mol. Liq. 256 (2018) 565–573.

  9. A.S. Williamson, P. Eng, Building a Corrosion Management System via Material Sus- tainability and Stewardship, 2020.

  10. R.S. Razavi, Recent researches in corrosion evaluation and protection, BoD–Books on Demand, 2012.

  11. M. Aliofkhazraei, Developments in corrosion protection, BoD–Books on Demand, 2014.

  12. G. Grundmeier, W. Schmidt, M. Stratmann, Corrosion protection by organic coat- ings: electrochemical mechanism and novel methods of investigation, Electrochim. Acta 45 (2000) 2515–2533.

  13. H.A. Videla, L.K. Herrera, Understanding microbial inhibition of corrosion. A com- prehensive overview, Int. Biodeterior. Biodegradation 63 (2009) 896–900.

  14. N.D. Gowraraju, S. Jagadeesan, K. Ayyasamy, L.O. Olasunkanmi, E.E. Ebenso, C. Subramanian, Adsorption characteristics of iota-carrageenan and inulin biopoly- mers as potential corrosion inhibitors at mild steel/sulphuric acid interface, J. Mol. Liq. 232 (2017) 9–19.

  15. S.A. Umoren, M.M. Solomon, Protective polymeric films for industrial substrates: a critical review on past and recent applications with conducting polymers and poly- mer composites/nanocomposites, Prog. Mater. Sci. 104 (2019) 380–450.

  16. A. Ezeoke, N. Obi-Egbedi, C. Adeosun, O. Adeyemi, Synergistic effect of leaf extracts of Cordia sebestena L. and iodide ions on the corrosion inhibition of mild steel in sulphuric acid, Int. J. Electrochem. Sci. 7 (2012) 5339–5355.

  17. H. Vashisht, S. Kumar, I. Bahadur, G. Singh, Evaluation of (2-hydroxyethyl) triphenyl phosphonium bromide as corrosion inhibitor for mild steel in sulphuric acid, Int. J. Electrochem. Sci. 8 (2013) 684–699.

  18. E. Ituen, O. Akaranta, A. James, Evaluation of performance of corrosion inhibitors using adsorption isotherm models: an overview, Chemical Science International Journal (2017) 1–34.

  19. C. Verma, H. Lgaz, D. Verma, E.E. Ebenso, I. Bahadur, M. Quraishi, Molecular dynam- ics and Monte Carlo simulations as powerful tools for study of interfacial adsorp- tion behavior of corrosion inhibitors in aqueous phase: a review, J. Mol. Liq. 260 (2018) 99–120.

  20. N.V. Likhanova, M.A. Domínguez-Aguilar, O. Olivares-Xometl, N. Nava-Entzana, E. Arce, H. Dorantes, The effect of ionic liquids with imidazolium and pyridinium cat- ions on the corrosion inhibition of mild steel in acidic environment, Corros. Sci. 52 (2010) 2088–2097.

  21. C. Verma, I. Obot, I. Bahadur, E.-S.M. Sherif, E.E. Ebenso, Choline based ionic liquids as sustainable corrosion inhibitors on mild steel surface in acidic medium: gravi- metric, electrochemical, surface morphology, DFT and Monte Carlo simulation studies, Appl. Surf. Sci. 457 (2018) 134–149.

  22. C. Verma, D.K. Verma, E.E. Ebenso, M.A. Quraishi, Sulfur and phosphorus heteroatom-containing compounds as corrosion inhibitors: an overview, Heteroat. Chem. 29 (2018), e21437.

  23. M. Deyab, M. Zaky, M. Nessim, Inhibition of acid corrosion of carbon steel using four imidazolium tetrafluoroborates ionic liquids, J. Mol. Liq. 229 (2017) 396–404.

  24. N. Subasree, J.A. Selvi, Imidazolium based ionic liquid derivatives; synthesis and evaluation of inhibitory effect on mild steel corrosion in hydrochloric acid solution, Heliyon 6 (2020), e03498.

  25. F.A. Azeez, O.A. Al-Rashed, A.A. Nazeer, Controlling of mild-steel corrosion in acidic solution using environmentally friendly ionic liquid inhibitors: effect of alkyl chain, J. Mol. Liq. 265 (2018) 654–663.

  26. D. Liu ao, H. Ding, H. Lu, J. Gui, Towards understanding corrosion inhibition of sul- fonate/carboxylate functionalized ionic liquids: an experimental and theoretical study, J. Colloid Interface Sci. S. C (2020).

  27. A. Bousskri, A. Anejjar, M. Messali, R. Salghi, O. Benali, Y. Karzazi, S. Jodeh, M. Zougagh, E.E. Ebenso, B. Hammouti, Corrosion inhibition of carbon steel in aggres- sive acidic media with 1-(2-(4-chlorophenyl)-2-oxoethyl) pyridazinium bromide, J. Mol. Liq. 211 (2015) 1000–1008.

  28. S.M. Tawfik, Ionic liquids based gemini cationic surfactants as corrosion inhibitors for carbon steel in hydrochloric acid solution, J. Mol. Liq. 216 (2016) 624–635.




  1. I. Lozano, E. Mazario, C. Olivares-Xometl, N. Likhanova, P. Herrasti, Corrosion be- haviour of API 5LX52 steel in HCl and H2SO4 media in the presence of 1, 3- dibencilimidazolio acetate and 1, 3-dibencilimidazolio dodecanoate ionic liquids as inhibitors, Mater. Chem. Phys. 147 (2014) 191–197.

  2. A. Yousefi, S. Javadian, J. Neshati, A new approach to study the synergistic inhibi- tion effect of cationic and anionic surfactants on the corrosion of mild steel in HCl solution, Ind. Eng. Chem. Res. 53 (2014) 5475–5489.

  3. P. Kannan, J. Karthikeyan, P. Murugan, T.S. Rao, N. Rajendran, Corrosion inhibition effect of novel methyl benzimidazolium ionic liquid for carbon steel in HCl me- dium, J. Mol. Liq. 221 (2016) 368–380.

  4. S. Ullah, M.A. Bustam, A.M. Shariff, G. Gonfa, K. Izzat, Experimental and quantum study of corrosion of A36 mild steel towards 1-butyl-3-methylimidazolium tetrachloroferrate ionic liquid, Appl. Surf. Sci. 365 (2016) 76–83.

  5. Y. Sasikumar, A. Adekunle, L.O. Olasunkanmi, I. Bahadur, R. Baskar, M.M. Kabanda, I. Obot, E.E. Ebenso, Experimental, quantum chemical and Monte Carlo simulation studies on the corrosion inhibition of some alkyl imidazolium ionic liquids contain- ing tetrafluoroborate anion on mild steel in acidic medium, J. Mol. Liq. 211 (2015) 105–118.

  6. X. Zhou, H. Yang, F. Wang, [BMIM] BF4 ionic liquids as effective inhibitor for carbon steel in alkaline chloride solution, Electrochim. Acta 56 (2011) 4268–4275.

  7. L.C. Murulana, A.K. Singh, S.K. Shukla, M.M. Kabanda, E.E. Ebenso, Experimental and quantum chemical studies of some bis (trifluoromethyl-sulfonyl) imide imidazolium-based ionic liquids as corrosion inhibitors for mild steel in hydrochlo- ric acid solution, Ind. Eng. Chem. Res. 51 (2012) 13282–13299.

  8. B. Hammouti, S. Alamry, A. Alzahrani, Z. Moussa, M. Messali, M. Ibrahim, Corrosion inhibition of carbon steel by imidazolium and pyridinium cations ionic liquids in acidic environment, Port. Electrochim. Acta 29 (2011) 375–389.

  9. M.E. Mashuga, L.O. Olasunkanmi, A.S. Adekunle, S. Yesudass, M.M. Kabanda, E.E. Ebenso, Adsorption, thermodynamic and quantum chemical studies of 1-hexyl- 3-methylimidazolium based ionic liquids as corrosion inhibitors for mild steel in HCl, Materials 8 (2015) 3607–3632.

  10. A.M. Atta, G.A. El-Mahdy, H.A. Al-Lohedan, A.R.O. Ezzat, A new green ionic liquid- based corrosion inhibitor for steel in acidic environments, Molecules 20 (2015) 11131–11153.

  11. A. Zarrouk, M. Messali, H. Zarrok, R. Salghi, A. Ali, B. Hammouti, S. Al-Deyab, F. Bentiss, 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. 7 (2012) 6998–7015.

  12. M. Messali, M. Asiri, A green ultrasound-assisted access to some new 1-benzyl-3- (4-phenoxybutyl) imidazolium-based ionic liquids derivatives—potential corro- sion inhibitors of mild steel in acidic environment, J. Mater. Environ. Sci 5 (2013) 770–785.

  13. M. Ezhilarasi, B. Prabha, T. Santhi, Novel pyrazole based ionic liquid as a corrosion inhibitor for mild steel in acidic media, Chem. Sci. 4 (2015) 758–767.

  14. E. Kowsari, S. Arman, M. Shahini, H. Zandi, A. Ehsani, R. Naderi, A. PourghasemiHanza, M. Mehdipour, In situ synthesis, electrochemical and quan- tum chemical analysis of an amino acid-derived ionic liquid inhibitor for corrosion protection of mild steel in 1M HCl solution, Corros. Sci. 112 (2016) 73–85.

  15. F. El-Hajjaji, M. Messali, A. Aljuhani, M. Aouad, B. Hammouti, M. Belghiti, D. Chauhan, M. Quraishi, Pyridazinium-based ionic liquids as novel and green corro- sion inhibitors of carbon steel in acid medium: electrochemical and molecular dy- namics simulation studies, J. Mol. Liq. 249 (2018) 997–1008.

  16. A.A. Nkuna, E.D. Akpan, I. Obot, C. Verma, E.E. Ebenso, L.C. Murulana, Impact of se- lected ionic liquids on corrosion protection of mild steel in acidic medium: exper- imental and computational studies, J. Mol. Liq. 314 (2020) 113609.

  17. S. Cao, D. Liu, H. Ding, J. Wang, H. Lu, J. Gui, Task-specific ionic liquids as corrosion inhibitors on carbon steel in 0.5 M HCl solution: an experimental and theoretical study, Corros. Sci. 153 (2019) 301–313.

  18. L. Feng, S. Zhang, Y. Qiang, S. Xu, B. Tan, S. Chen, The synergistic corrosion inhibi- tion study of different chain lengths ionic liquids as green inhibitors for X70 steel in acidic medium, Mater. Chem. Phys. 215 (2018) 229–241.

  19. Y. Guo, B. Xu, Y. Liu, W. Yang, X. Yin, Y. Chen, J. Le, Z. Chen, Corrosion inhibition properties of two imidazolium ionic liquids with hydrophilic tetrafluoroborate and hydrophobic hexafluorophosphate anions in acid medium, J. Ind. Eng. Chem. 56 (2017) 234–247.

  20. P. Kannan, T.S. Rao, N. Rajendran, Anti-corrosion behavior of benzimidazoliumtetrafluroborate ionic liquid in acid medium using electrochemi- cal noise technique, J. Mol. Liq. 222 (2016) 586–595.

  21. H. El Sayed, S. Elsaeed, H. Ashour, E. Zaki, H. El Nagy, Novel acrylamide ionic liquids as anti-corrosion for X-65 steel dissolution in acid medium: adsorption, hydrogen evolution and mechanism, J. Mol. Struct. 1168 (2018) 106–114.

  22. D. Yang, Y. Ye, Y. Su, S. Liu, D. Gong, H. Zhao, Functionalization of citric acid-based carbon dots by imidazole toward novel green corrosion inhibitor for carbon steel, J. Clean. Prod. 229 (2019) 180–192.

  23. Y. Guo, Z. Chen, Y. Zuo, Y. Chen, W. Yang, B. Xu, Ionic liquids with two typical hy- drophobic anions as acidic corrosion inhibitors, J. Mol. Liq. 269 (2018) 886–895.

  24. C. Verma, L.O. Olasunkanmi, I. Bahadur, H. Lgaz, M. Quraishi, J. Haque, E.-S.M. Sherif, E.E. Ebenso, Experimental, density functional theory and molecular dynam- ics supported adsorption behavior of environmental benign imidazolium based ionic liquids on mild steel surface in acidic medium, J. Mol. Liq. 273 (2019) 1–15.

  25. P. Arellanes-Lozada, O. Olivares-Xometl, N.V. Likhanova, I.V. Lijanova, J.R. Vargas- García, R.E. Hernández-Ramírez, Adsorption and performance of ammonium- based ionic liquids as corrosion inhibitors of steel, J. Mol. Liq. 265 (2018) 151–163.

  26. Y. Ma, F. Han, Z. Li, C. Xia, Corrosion behavior of metallic materials in acidic- functionalized ionic liquids, ACS Sustain. Chem. Eng. 4 (2016) 633–639.


S. Cao, D. Liu, H. Ding, J. Wang, H. Lu, J. Gui, Corrosion inhibition effects of a novel ionic liquid with and without potassium iodide for carbon steel in 0.5 M HCl solu- tion: an experimental study and theoretical calculation, J. Mol. Liq. 275 (2019) 729–740.

  1. P. Kannan, A. Varghese, K. Palanisamy, A.S. Abousalem, Evaluating prolonged cor- rosion inhibition performance of benzyltributylammonium tetrachloroaluminate ionic liquid using electrochemical analysis and Monte Carlo simulation, J. Mol. Liq. 297 (2020), 111855.

  1. J. Wang, D. Liu, S. Cao, S. Pan, H. Luo, T. Wang, H. Ding, B.B. Mamba, J. Gui, Inhibition effect of monomeric/polymerized imidazole zwitterions as corrosion inhibitors for carbon steel in acid medium, J. Mol. Liq. (2020) 113436.

  2. R. Aslam, M. Mobin, I.B. Obot, A.H. Alamri, Ionic liquids derived from α-amino acid ester salts as potent green corrosion inhibitors for mild steel in 1M HCl, J. Mol. Liq. 318 (2020) 113982.

  3. F. El-Hajjaji, E. Ech-chihbi, N. Rezki, F. Benhiba, M. Taleb, D.S. Chauhan, M. Quraishi, Electrochemical and theoretical insights on the adsorption and corrosion inhibition of novel pyridinium-derived ionic liquids for mild steel in 1 M HCl, J. Mol. Liq. 314 (2020), 113737.

  4. J.H. Ha, J.-H. Cho, J.H. Kim, B.W. Cho, S.H. Oh, 1-Butyl-1-methylpyrrolidinium chlo- ride as an effective corrosion inhibitor for stainless steel current collectors in mag- nesium chloride complex electrolytes, J. Power Sources 355 (2017) 90–97.

  5. S.M. Ali, K.M. Emran, M. Messali, Improved protection performance of modified sol-gel coatings with pyridinium-based ionic liquid for cast iron corrosion in 0.5 M HCL solution, Progress in Organic Coatings 130 (2019) 226–234.

  6. E.K. Ardakani, E. Kowsari, A. Ehsani, Imidazolium-derived polymeric ionic liquid as a green inhibitor for corrosion inhibition of mild steel in 1.0 M HCl: experimental and computational study, Colloids Surf. A Physicochem. Eng. Asp. 586 (2020) 124195.

  7. F. Cui, Y. Ni, J. Jiang, L. Ni, Z. Wang, Experimental and theoretical studies of five imidazolium-based ionic liquids as corrosion inhibitors for mild steel in H2S and HCl solutions, Chem. Eng. Commun. (2020) 1–14.

  8. P. Kannan, A. Varghese, A.T. Mathew, K. Palanisamy, A.S. Abousalem, M. Kalaiyarasan, N. Rajendran, Exploring the inhibition performance of tetrachloroferrate ionic liquid in acid environment using scanning electrochemical microscope and theoretical approaches, Surfaces and Interfaces 20 (2020) 100594.

  9. M. Corrales-Luna, T. Le Manh, M. Romero-Romo, M. Palomar-Pardavé, E.M. Arce- Estrada, 1-Ethyl 3-methylimidazolium thiocyanate ionic liquid as corrosion inhib- itor of API 5L X52 steel in H2SO4 and HCl media, Corros. Sci. 153 (2019) 85–99.

  10. P. Arellanes-Lozada, V. Díaz-Jiménez, H. Hernández-Cocoletzi, N. Nava, O. Olivares- Xometl, N.V. Likhanova, Corrosion inhibition properties of iodide ionic liquids for API 5L X52 steel in acid medium, Corros. Sci. 175 (2020), 108888.

  11. P.D. Pancharatna, S. Lata, G. Singh, Imidazolium based ionic liquid as an efficient and green corrosion constraint for mild steel at acidic pH levels, J. Mol. Liq. 278 (2019) 467–476.

  12. Y. Li, S. Zhang, Q. Ding, B. Qin, L. Hu, Versatile 4, 6-dimethyl-2-mercaptopyrimidine based ionic liquids as high-performance corrosion inhibitors and lubricants, J. Mol. Liq. 284 (2019) 577–585.

  13. N.V. Likhanova, P. Arellanes-Lozada, O. Olivares-Xometl, H. Hernández-Cocoletzi,

I.V. Lijanova, J. Arriola-Morales, J. Castellanos-Aguila, Effect of organic anions on ionic liquids as corrosion inhibitors of steel in sulfuric acid solution, J. Mol. Liq. 279 (2019) 267–278.

  1. M. Zaky, M. Nessim, M. Deyab, Synthesis of new ionic liquids based on dicationic imidazolium and their anti-corrosion performances, J. Mol. Liq. 290 (2019), 111230.

  2. M. Goyal, S. Kumar, I. Bahadur, E.E. Ebenso, H. Lgaz, I.-M. Chung, Interfacial adsorp- tion behavior of quaternary phosphonium based ionic liquids on metal-electrolyte interface: electrochemical, surface characterization and computational approaches, J. Mol. Liq. 298 (2020), 111995.

  3. M. Goyal, H. Vashisht, A. Kumar, S. Kumar, I. Bahadur, F. Benhiba, A. Zarrouk, Isopentyltriphenylphosphonium bromideionic liquid as a newly effective corro- sion inhibitor on metal-electrolyte interface in acidic medium: experimental, sur- face morphological (SEM-EDX & AFM) and computational analysis, J. Mol. Liq. 316 (2020), 113838.

  4. O. Olivares-Xometl, I.V. Lijanova, N.V. Likhanova, P. Arellanes-Lozada, H. Hernández-Cocoletzi, J. Arriola-Morales, Theoretical and experimental study of the anion carboxylate in quaternary-ammonium-derived ionic liquids for inhibiting the corrosion of API X60 steel in 1 M H2SO4, J. Mol. Liq. 114075 (2020).

  5. A. Jannat, R. Naderi, E. Kowsari, H. Zandi, M. Saybani, R. Safari, A. Ehsani, Electro- chemical techniques and quantum chemical analysis as tools to study effect of a dicationic ionic liquid on steel behavior in H2SO4, J. Taiwan Inst. Chem. Eng. 99 (2019) 18–28.

  6. R. Fuchs-Godec, The erosion–corrosion inhibition of AISI 431 martensitic stainless steel in 2.0 M H2SO4 solution using N-alkyl quaternary ammonium salts as inhib- itors, Ind. Eng. Chem. Res. 49 (2010) 6407–6415.

  7. D. Guzmán-Lucero, O. Olivares-Xometl, R. Martínez-Palou, N.V. Likhanova, M.A. Domínguez-Aguilar, V. Garibay-Febles, Synthesis of selected vinylimidazolium ionic liquids and their effectiveness as corrosion inhibitors for carbon steel in aque- ous sulfuric acid, Ind. Eng. Chem. Res. 50 (2011) 7129–7140.

  8. A.L. Chong, J.I. Mardel, D.R. MacFarlane, M. Forsyth, A.E. Somers, Synergistic corro- sion inhibition of mild steel in aqueous chloride solutions by an imidazolinium car- boxylate salt, ACS Sustain. Chem. Eng. 4 (2016) 1746–1755.

  9. O. Olivares-Xometl, C. López-Aguilar, P. Herrastí-González, N.V. Likhanova, I. Lijanova, R. Martínez-Palou, J.A. Rivera-Márquez, Adsorption and corrosion inhibi- tion performance by three new ionic liquids on API 5L X52 steel surface in acid media, Ind. Eng. Chem. Res. 53 (2014) 9534–9543.




  1. N.V. Likhanova, O. Olivares-Xometl, D. Guzmán-Lucero, M.A. Domínguez-Aguilar,

N. Nava, M. Corrales-Luna, M.C. Mendoza, Corrosion inhibition of carbon steel in acidic environment by imidazolium ionic liquids containing vinyl- hexafluorophosphate as anion, Int. J. Electrochem. Sci. 6 (2011) 4514–4536.

  1. O. Benali, O. Cherkaoui, A. Lallam, Adsorption and corrosion inhibition of new syn- thesized pyridazinium-based ionic liquid on carbon steel in 0.5 MH2so4, J. Mater. Environ. Sci 6 (2015) 598–606.

  2. A.P. Hanza, R. Naderi, E. Kowsari, M. Sayebani, Corrosion behavior of mild steel in H2SO4 solution with 1, 4-di [1′-methylene-3′-methyl imidazolium bromide]-ben- zene as an ionic liquid, Corros. Sci. 107 (2016) 96–106.

  3. X. Zheng, S. Zhang, M. Gong, W. Li, Experimental and theoretical study on the cor- rosion inhibition of mild steel by 1-octyl-3-methylimidazolium L-prolinate in sul- furic acid solution, Ind. Eng. Chem. Res. 53 (2014) 16349–16358.

  4. M. Goyal, H. Vashisht, S. Kumar, I. Bahadur, Anti-corrosion performance of eco- friendly inhibitor (2-aminobenzyl) triphenylphosphonium bromide ionic liquid on mild steel in 0.5 M sulfuric acid, J. Mol. Liq. 261 (2018) 162–173.

  5. M.C. Luna, T. Le Manh, R.C. Sierra, J.M. Flores, L.L. Rojas, E.A. Estrada, Study of cor- rosion behavior of API 5L X52 steel in sulfuric acid in the presence of ionic liquid 1-ethyl 3-methylimidazolium thiocyanate as corrosion inhibitor, J. Mol. Liq. 289 (2019) 111106.

  6. M. Nessim, M. Zaky, M. Deyab, Three new gemini ionic liquids: synthesis, charac- terizations and anticorrosion applications, J. Mol. Liq. 266 (2018) 703–710.

  7. Q. Zhang, Y. Hua, Corrosion inhibition of aluminum in hydrochloric acid solution by alkylimidazolium ionic liquids, Mater. Chem. Phys. 119 (2010) 57–64.

  8. S.K. Shetty, A.N. Shetty, Ionic liquid as an effective corrosion inhibitor on 6061 Al- 15 Vol. Pct. SiC (p) composite in 0.1 M H2SO4 medium–an ecofriendly approach, Can. Chem. Trans. 3 (2015) 41–64.

  9. P. Arellanes-Lozada, O. Olivares-Xometl, D. Guzmán-Lucero, N.V. Likhanova, M.A. Domínguez-Aguilar, I.V. Lijanova, E. Arce-Estrada, The inhibition of aluminum cor- rosion in sulfuric acid by poly (1-vinyl-3-alkyl-imidazolium hexafluorophosphate), Materials 7 (2014) 5711–5734.

  10. Q. Zhang, Z. Gao, F. Xu, X. Zou, Adsorption and corrosion inhibitive properties of gemini surfactants in the series of hexanediyl-1, 6-bis-(diethyl alkyl ammonium bromide) on aluminium in hydrochloric acid solution, Colloids Surf. A Physicochem. Eng. Asp. 380 (2011) 191–200.

  11. M.A. Martini, Fernanda Trombetta da Silva, Natália Fanti Panno, Michèle Oberson de Souza, Roberto Fernando de Souza & Emilse.

  12. X. Li, S. Deng, H. Fu, Inhibition by tetradecylpyridinium bromide of the corrosion of aluminium in hydrochloric acid solution, Corros. Sci. 53 (2011) 1529–1536.

  13. M.-D. Bermúdez, A.-E. Jiménez, G. Martínez-Nicolás, Study of surface interactions of ionic liquids with aluminium alloys in corrosion and erosion–corrosion pro- cesses, Appl. Surf. Sci. 253 (2007) 7295–7302.

  14. P. Huang, J.-A. Latham, D.R. MacFarlane, P.C. Howlett, M. Forsyth, A review of ionic liquid surface film formation on Mg and its alloys for improved corrosion perfor- mance, Electrochim. Acta 110 (2013) 501–510.

  15. Y. Yan, D. Gunzelmann, C. Pozo-Gonzalo, A.F. Hollenkamp, P.C. Howlett, D.R. MacFarlane, M. Forsyth, Investigating discharge performance and Mg interphase properties of an ionic liquid electrolyte based Mg-air battery, Electrochim. Acta 235 (2017) 270–279.

  16. K.M. Manamela, L.C. Murulana, M.M. Kabanda, E.E. Ebenso, Adsorptive and DFT studies of some imidazolium based ionic liquids as corrosion inhibitors for zinc in acidic medium, vol. 9, 2014 3029–3046.

  17. H. Tavakoli, T. Shahrabi, M. Hosseini, Synergistic effect on corrosion inhibition of cop- per by sodium dodecylbenzenesulphonate (SDBS) and 2-mercaptobenzoxazole, Mater. Chem. Phys. 109 (2008) 281–286.


K. Cao, H.Y. Sun, B.R. Hou, Corrosion inhibition of gemini surfactant for copper in 3.5% NaCl, Advanced Materials Research, Trans Tech Publ (2014) 1125–1131.

  1. F. Zucchi, V. Grassi, A. Frignani, G. Trabanelli, Inhibition of copper corrosion by si- lane coatings, Corros. Sci. 46 (2004) 2853–2865.

  2. C. Gabler, C. Tomastik, J. Brenner, L. Pisarova, N. Doerr, G. Allmaier, Corrosion prop- erties of ammonium based ionic liquids evaluated by SEM-EDX, XPS and ICP-OES, Green Chem. 13 (2011) 2869–2877.

  3. A. El-Shamy, K. Zakaria, M. Abbas, S.Z. El Abedin, Anti-bacterial and anti-corrosion effects of the ionic liquid 1-butyl-1-methylpyrrolidinium trifluoromethylsulfonate, J. Mol. Liq. 211 (2015) 363–369.

  4. D. Yang, M. Zhang, J. Zheng, H. Castaneda, Corrosion inhibition of mild steel by an imidazolium ionic liquid compound: the effect of pH and surface pre-corrosion, RSC Adv. 5 (2015) 95160–95170.

  5. A. Yousefi, S. Javadian, M. Sharifi, N. Dalir, A. Motaee, An experimental and theoret- ical study of biodegradable Gemini surfactants and surfactant/carbon nanotubes (CNTs) mixtures as new corrosion inhibitor, Journal of Bio-and Tribo-Corrosion 5 (2019) 82.

  6. A.K. Dermani, E. Kowsari, B. Ramezanzadeh, R. Amini, Utilizing imidazole based ionic liquid as an environmentally friendly process for enhancement of the epoxy coating/graphene oxide composite corrosion resistance, J. Ind. Eng. Chem. 79 (2019) 353–363.

  7. A. Acidi, M. Hasib-ur-Rahman, F. Larachi, A. Abbaci, Ionic liquids [EMIM][BF 4], [EMIM][Otf] and [BMIM][Otf] as corrosion inhibitors for CO 2 capture applications, Korean J. Chem. Eng. 31 (2014) 1043–1048.

  8. M. Ontiveros-Rosales, O. Olivares-Xometl, N.V. Likhanova, I.V. Lijanova, D. Guzman-Lucero, M.D.C. Mendoza-Herrera, Use of the ionic liquid trioctylmethyl ammonium dodecanedioate as a corrosion inhibitor of steel in production water, Res. Chem. Intermed. 43 (2017) 641–660.

  9. E. Kowsari, M. Payami, R. Amini, B. Ramezanzadeh, M. Javanbakht, Task-specific ionic liquid as a new green inhibitor of mild steel corrosion, Appl. Surf. Sci. 289 (2014) 478–486.

  10. M. Deyab, Sulfonium-based ionic liquid as an anticorrosive agent for thermal desa- lination units, J. Mol. Liq. 296 (2019), 111742.

  11. M. Hasib-ur-Rahman, F. Larachi, Prospects of using room-temperature ionic liquids as corrosion inhibitors in aqueous ethanolamine-based CO2 capture solvents, Ind. Eng. Chem. Res. 52 (2013) 17682–17685.

  12. A.M. Sadanandan, P.K. Khatri, R. Saxena, S.L. Jain, Guanidine based amino acid de- rived task specific ionic liquids as noncorrosive lubricant additives for tribological performance, J. Mol. Liq. 313 (2020), 113527.

  13. G. Vastag, A. Shaban, M. Vraneš, A. Tot, S. Belić, S. Gadžurić, Influence of the N-3 alkyl chain length on improving inhibition properties of imidazolium-based ionic liquids on copper corrosion, J. Mol. Liq. 264 (2018) 526–533.

  14. P. Hu, Z. Wu, J. Wang, Y. Huang, Q. Liu, S.-F. Zhou, Corrosion inhibiting performance and mechanism of protic ionic liquids as green brass inhibitors in nitric acid, Green Energy & Environment 5 (2020) 214–222.

  15. H. Su, L. Wang, Y. Wu, Y. Zhang, J. Zhang, Insight into inhibition behavior of novel ionic liquids for magnesium alloy in NaCl solution: experimental and theoretical investigation, Corros. Sci. 165 (2020), 108410.

  16. S.K. Shetty, A.N. Shetty, Eco-friendly benzimidazolium based ionic liquid as a corro- sion inhibitor for aluminum alloy composite in acidic media, J. Mol. Liq. 225 (2017) 426–438.

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