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Licensed Unlicensed Requires Authentication Published by De Gruyter February 4, 2021

Quinoxaline derivatives as anticorrosion additives for metals

  • Jagadeesan Saranya

    Dr. Jagadeesan Saranya is an associate professor at the Department of H & S (Chemistry), Gokaraju Rangaraju Institute of Engineering and Technology, Hyderabad, India. She has 10 years of teaching and research experience. Her research interest lies in the area of corrosion science, co-ordination chemistry, supercapacitors, and theoretical chemistry. She has more than 20 research papers in reputable national and international journals (Scopus author id: 55314833700; Orcid id: http://orcid.org/0000-0002-2343-6718). Recently, she received the Top 100 International Distinguished Researcher 2020 Award. She have two Indian patents to her credit. She is a life member of Electrochemical Society of India, and Indian Academic Researcher’s Association.

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    , Kandikonda Lavanya

    Kandikonda Lavanya is working as an assistant professor at the Department of H & S (chemistry), Gokaraju Rangaraju Institute of Engineering and Technology, Hyderabad, India. She has more than five years of teaching experience. She works in the fields of corrosion and green chemistry. Her areas of research interest include synthesis of organic compounds and their use as corrosion inhibitors. She ranked first in MSc (organic chemistry) in Kakatiya University.

    , Meduri Haritha Kiranmai

    Meduri Haritha Kiranmai is an assistant professor of chemistry, Gokaraju Rangaraju Institute of Engineering and Technology, Hyderabad. She obtained an MSc in organic chemistry from Acharya Nagarjuna University (ANU), Guntur and has over 12 years of academic experience. Currently, she is pursuing a PhD at ANU. She was awarded a Gold Medal for standing university first in post-graduation (chemistry). Her research interests include organic synthesis, nanotechnology, and spectroscopic techniques. She has attended various national and international conferences.

    , Ram Subbiah , Abdelkader Zarrouk

    Prof. Abdelkader Zarrouk received his PhD in materials and corrosion science from Mohammed First University, Morocco, 2011. He has published more than 354 papers in international journals (SCOPUS ID: 36125763200, http://orcid.org/0000-0002-5495-2125) with an h-index = 54, and presented about 180 communications in symposia and national/international meetings. He has developed two Moroccan and three US patents. He is on the editorial board of 26 international journals, a reviewer of more than 50 peer-reviewed international journals, and the author of two books.

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    and Subramanian Chitra

    Subramanian Chitra is an associate professor and head of the Department of Chemistry, PSGR Krishnammal College for Women (KCW), Tamil Nadu. She has more than 25 years of teaching and research experience. She works in the field of corrosion and polymer chemistry, has authored more than 100 research publications in national and international journals, and has guided 20 MPhil scholars and 10 PhD scholars. She has completed three projects funded by the University Grants Commission and, presently, handles a major research project funded by GRG. She is a research council member at PSGR KCW and a life member of the Society for Advancement of Electrochemical Science and Technology.

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From the journal Corrosion Reviews

Abstract

There are collective data about the scope of various corrosion inhibitors viz., polymers, plant extracts, inorganic compounds, ionic liquids, organic molecules with hetero atoms, and π-electron clouds have been reported so far on the corrosion prevention of various metals in various corrosive media. Many reviews of literature related to organic inhibitors have been accounted for their classification, application, and mechanism of their inhibition on metals. A mini-review with specific reference to quinoxaline derivatives is summarized in this manuscript.


Corresponding authors: Jagadeesan Saranya, Department of Humanities and Sciences (Chemistry), Gokaraju Rangaraju Institute of Engineering and Technology, Nizampet, Hyderabad, 500090, India, E-mail: ; and Subramanian Chitra,Department of Chemistry, PSGR Krishnammal College for Women, Coimbatore 641004, Tamil Nadu, India, E-mail:

About the authors

Jagadeesan Saranya

Dr. Jagadeesan Saranya is an associate professor at the Department of H & S (Chemistry), Gokaraju Rangaraju Institute of Engineering and Technology, Hyderabad, India. She has 10 years of teaching and research experience. Her research interest lies in the area of corrosion science, co-ordination chemistry, supercapacitors, and theoretical chemistry. She has more than 20 research papers in reputable national and international journals (Scopus author id: 55314833700; Orcid id: http://orcid.org/0000-0002-2343-6718). Recently, she received the Top 100 International Distinguished Researcher 2020 Award. She have two Indian patents to her credit. She is a life member of Electrochemical Society of India, and Indian Academic Researcher’s Association.

Kandikonda Lavanya

Kandikonda Lavanya is working as an assistant professor at the Department of H & S (chemistry), Gokaraju Rangaraju Institute of Engineering and Technology, Hyderabad, India. She has more than five years of teaching experience. She works in the fields of corrosion and green chemistry. Her areas of research interest include synthesis of organic compounds and their use as corrosion inhibitors. She ranked first in MSc (organic chemistry) in Kakatiya University.

Meduri Haritha Kiranmai

Meduri Haritha Kiranmai is an assistant professor of chemistry, Gokaraju Rangaraju Institute of Engineering and Technology, Hyderabad. She obtained an MSc in organic chemistry from Acharya Nagarjuna University (ANU), Guntur and has over 12 years of academic experience. Currently, she is pursuing a PhD at ANU. She was awarded a Gold Medal for standing university first in post-graduation (chemistry). Her research interests include organic synthesis, nanotechnology, and spectroscopic techniques. She has attended various national and international conferences.

Abdelkader Zarrouk

Prof. Abdelkader Zarrouk received his PhD in materials and corrosion science from Mohammed First University, Morocco, 2011. He has published more than 354 papers in international journals (SCOPUS ID: 36125763200, http://orcid.org/0000-0002-5495-2125) with an h-index = 54, and presented about 180 communications in symposia and national/international meetings. He has developed two Moroccan and three US patents. He is on the editorial board of 26 international journals, a reviewer of more than 50 peer-reviewed international journals, and the author of two books.

Subramanian Chitra

Subramanian Chitra is an associate professor and head of the Department of Chemistry, PSGR Krishnammal College for Women (KCW), Tamil Nadu. She has more than 25 years of teaching and research experience. She works in the field of corrosion and polymer chemistry, has authored more than 100 research publications in national and international journals, and has guided 20 MPhil scholars and 10 PhD scholars. She has completed three projects funded by the University Grants Commission and, presently, handles a major research project funded by GRG. She is a research council member at PSGR KCW and a life member of the Society for Advancement of Electrochemical Science and Technology.

  1. Author contribution: All the authors have accepted responsibility for the entire content of this submitted manuscript and approved submission.

  2. Research funding: None declared.

  3. Conflict of interest statement: The authors declare no conflicts of interest regarding this article.

References

Abid, M.D. and Azam, A. (2006). Synthesis, characterization and antiamoebic activity of 1-(thiazolo[4,5-b]quinoxaline-2-yl)-3-phenyl-2-pyrazoline derivatives. Bioorg. Med. Chem. Lett. 16: 2812–2816, https://doi.org/10.1016/j.bmcl.2006.01.116.Search in Google Scholar

Abu-Hashem, A.A., Gouda, M.A., and Badria, F.A. (2010). Synthesis of some new pyrimido[2′,1′:2,3] thiazole [4,5-b]quinoxaline derivatives as anti-inflammatory and analgesic agents. Eur. J. Med. Chem. 45: 1976–1981, https://doi.org/10.1016/j.ejmech.2010.01.042.Search in Google Scholar

Adardour, K., Kassou, O., Touir, R., Ebn Touhami, M., ElKafsaoui, H., Benzeid, H., Essassi, E.M., and Sfaira, M. (2010). Study of the influence of new quinoxaline derivatives on corrosion inhibition of mild steel in hydrochloric acidic medium. J. Mater. Environ. Sci. 1: 129–138.Search in Google Scholar

Adardour, K., Touir, R., Bakri, M.E., Larhzil, H., Touhami, M.E., Ramli, Y., Zarrouk, A., Kafsaoui, H.E., and Essassi, E.M. (2015). Thermodynamic properties and comparative studies of quinoxaline derivatives as a corrosion inhibitor for mild steel in 1 M H2SO4. Res. Chem. Intermed. 41: 1571–1589, https://doi.org/10.1007/s11164-013-1293-y.Search in Google Scholar

Alt, A., Nisenbaum, E.S., Bleakman, D., and Witkin, J.M. (2006). A role for AMPA receptors in mood disorders. Biochem. Pharmacol. 71: 1273–1288, https://doi.org/10.1016/j.bcp.2005.12.022.Search in Google Scholar

Ammar, Y.A., Ismail, M.M.F., El-Gaby, M.S.A., and Zahran, M.A. (2002). Some reactions with quinoxaline-2,3-dicarboxylic acid anhydride: novel synthesis of thieno[2,3-d]pyrimidines and pyrrolo [3,4-b]quinoxalines as antimicrobial agents. Indian J. Chem. 41B: 1486–1491.10.1002/chin.200243194Search in Google Scholar

Anusuya, N., Saranya, J., Sounthari, P., Zarrouk, A., and Chitra, S. (2017). Corrosion inhibition and adsorption behaviour of some bis-pyrimidine derivatives on mild steel in acidic medium. J. Mol. Liq. 225: 406–417, https://doi.org/10.1016/j.molliq.2016.11.015.Search in Google Scholar

Asif, H. and Madhesia, D. (2011). Recent advances in pharmacological activities of quinoxaline derivatives. J. Pharm. Res. 4: 924–929.Search in Google Scholar

Badawy, M.A., Mohammed, G.G., Omar, M.M., Nassar, M.M., and Kamel, A.B. (2010). Synthesis, spectroscopic and thermal characterization of quinoxaline metal complexes. Eur. J. Chem. 1: 282–288, https://doi.org/10.5155/eurjchem.1.4.282-288.113.Search in Google Scholar

Balaji, V., Sateesh, N., and Hussain, M.M. (2015). Manufacture of aluminium metal matrix composite (Al7075-SiC) by stir casting technique. Mater. Today Proc. 2: 3403–3408, https://doi.org/10.1016/j.matpr.2015.07.315.Search in Google Scholar

Barea, C., Pabon, A., Galiano, S., Perez-Silanes, S., Gonzalez, G., Deyssard, C., Monge Deharo, E., and Aldana, I. (2012). Antiplasmodial and leishmanicidal activities of 2-cyano-3-(4-phenylpiperazine-1-carboxamido) quinoxaline 1,4-dioxide derivatives. Molecules 17: 9451–9461, https://doi.org/10.3390/molecules17089451.Search in Google Scholar

Benbouya, K., Rochdi, A., El Bakri, M., Larhzil, H., Touir, R., and Ebn Touhami, M. (2018). Anticorrosion properties of three quinoxaline derivatives on mild steel in 1.0 M H3PO4 solution. J. Mater. Environ. Sci. 9: 2730–2740.10.1007/s41207-017-0042-9Search in Google Scholar

Bockris, J.O.M., Drazic, D., and Despic, A.R. (1961). The electrode kinetics of the deposition and dissolution of iron. Electrochem. Acta 4: 325–361, https://doi.org/10.1016/0013-4686(61)80026-1.Search in Google Scholar

Burguete, A., Pontiki, E., Hadjipavlou-Litina, D., Ancizu, S., Villar, R., Solano, B., Moreno, E., Torres, E., Pérez, S., Aldana, I., et al.. (2011). Synthesis and biological evaluation of new quinoxaline derivatives as antioxidant and anti‐inflammatory agents. Chem. Biol. Drug Des. 77: 255–267, https://doi.org/10.1111/j.1747-0285.2011.01076.x.Search in Google Scholar

Carta, A., Palomba, M., Giuseppe, P., Molicotti, P., Paglietti, B., Cannas, S., and Zanetti, S. (2007). A new class of potent antitubercular agents against multidrug resistant Mycobacterium tuberculosis strains, [1,2,3]triazolo[4,5-h]quinolones. Bioorg. Med. Chem. Lett. 17: 4791–4794, https://doi.org/10.1016/j.bmcl.2007.06.064.Search in Google Scholar

Chitra, S., Parameswari, K., Vidhya, M., Kalishwari, M., and Selvaraj, A. (2011). Evaluation of quinoxalines as corrosion inhibitors for mild steel in acid environment. Int. J. Electrochem. Sci. 6: 4593–4613.Search in Google Scholar

Chung, H., Jung, O., Chae, M.J., Hong, S., Chung, K., Lee, S.K., and Ryu, C. (2005). Synthesis and biological evaluation of quinoxaline-5,8-diones that inhibit vascular smooth muscle cell proliferation. Bioorg. Med. Chem. Lett. 15: 3380–3384, https://doi.org/10.1016/j.bmcl.2005.05.022.Search in Google Scholar

Devi, G.N., Saranya, J., Manjubaashini, N., Thangadurai, T.D., Roopan, S.M., and Chitra, S. (2017). Polyamidoaminoepichlorohydrin resin a novel synthetic anti-corrosive water soluble polymer for mild steel. Prog. Org. Coat. 109: 117–125, https://doi.org/10.1016/j.porgcoat.2017.04.034.Search in Google Scholar

Donahue, F.M. and Nobe, K. (1965). Theory of organic corrosion inhibitors: adsorption and linear free energy relationships. J. Electrochem. Soc. 112: 886, https://doi.org/10.1149/1.2423723.Search in Google Scholar

Donahue, F.M. and Nobe, K. (1967). Theory of organic corrosion inhibitors: III. LFER correlation of inhibition of Armco iron by ring‐substituted anilines. J. Electrochem. Soc. 114: 1012, https://doi.org/10.1149/1.2424173.Search in Google Scholar

El Adnani, Z.M.M., Sfaira, M., Benzakour, M., Benjelloun, A., Ebn Touhami, M., Hammouti, B., and Taleb, M. (2012). DFT study of 7-R-3methylquinoxalin-2(1H)-ones (R=H; CH3; Cl) as corrosion inhibitors in hydrochloric acid. Int. J. Electrochem. Sci. 7: 6738–6751.10.1016/j.corsci.2012.11.020Search in Google Scholar

El Aoufir, Y., Lgaz, H., Bourazmi, H., Kerroum, Y., Ramli, Y., Guenbour, A., Salghi, R., El-Hajjaji, F., Hammouti, B., and Oudda, H. (2016). Quinoxaline derivatives as corrosion inhibitors of carbon steel in hydrochloridric acid media: electrochemical, DFT and Monte Carlo simulations studies. J. Mater. Environ. Sci. 7: 4330–4347.Search in Google Scholar

El Janati, A., Kandri Rodi, Y., Mokhtarі, M., Abdеl-Rahman, I., Alaoui, I., Ouazzani Chahdi, F., Ouzidan, Y., Steli, H., Еlmsеllеm, H., and Hammouti, B. (2019). 6-Nitro-1,4-di(prop-2-yn-1-yl)quinoxaline-2,3(1H,4H)-dione (NQPr) – a novel corrosion inhibitor for mild steel in hydrochloric acid environment. Int. J. Corros. Scale Inhib. 8: 702–716.10.17675/2305-6894-2019-8-3-17Search in Google Scholar

El-Hajjaji, F., Belkhmima, R.A., Zerga, B., Sfaira, M., Taleb, M., Ebn Touhami, M., Hammouti, B., Al-Deyab, S.S., and Ebenso, E.E. (2014a). Temperature performance of a thione quinoxaline compound as mild steel corrosion inhibitor in hydrochloric acid medium. Int. J. Electrochem. Sci. 9: 4721–4731.10.1016/S1452-3981(23)08127-0Search in Google Scholar

El-Hajjaji, F., Belkhmima, R.A., Zerga, B., Sfaira, M., Taleb, M., Ebn Touhami, M., and Hammouti, B. (2014c). Time and temperature elucidation on steel corrosion inhibition by 3-methyl-1-prop-2-ynylquinoxalin-2(1H)-one in molar hydrochloric acid: part 2. J. Mater. Environ. Sci. 5: 263–270.Search in Google Scholar

El-Hajjaji, F., Zerga, B., Sfaira, M., Taleb, M., Ebn Touhami, M., Hammouti, B., Al-Deyab, B.B., Benzeid, H., and Essassi El, M. (2014b). Comparative study of novel N-substituted quinoxaline derivatives towards mild steel corrosion in hydrochloric acid: part 1. J. Mater. Environ. Sci. 5: 255–262.Search in Google Scholar

El-Ouali, I., Hammouti, B., Aouniti, A., Ramli, Y., Azougagh, M., Essassi, E.M., and Bouachrine, M. (2010). Thermodynamic characterisation of steel corrosion in HCl in the presence of 2-phenylthieno (3, 2-b) quinoxaline. J. Mater. Environ. Sci. 1: 1–8.Search in Google Scholar

Evans, U.R. and Winterbottom, A.B. (Eds.) (1948). Metallic corrosion, passivity and protection. London: Edward Arnold and Co.Search in Google Scholar

Fouda, A., Ismail, M., El-Elewady, G., and Abousalem, A. (2017). Evaluation of 4-amidinophenyl-2,2′-bithiophene and its aza-analogue as novel corrosion inhibitors for CS in acidic media: experimental and theoretical study. J. Mol. Liq. 240: 372–388, https://doi.org/10.1016/j.molliq.2017.05.089.Search in Google Scholar

Guirado, A., Sánchez, J.I.L., Ruiz-Alcaraz, A.J., Bautista, D., and Gálvez, J. (2012). Synthesis and biological evaluation of 4-alkoxy-6,9-dichloro[1,2,4]triazolo[4,3-a]quinoxalines as inhibitors of TNF-α and IL-6. Eur. J. Med. Chem. 54: 87–94, https://doi.org/10.1016/j.ejmech.2012.04.035.Search in Google Scholar

Gupta, N.K., Verma, C., Quraishi, M.A., and Mukherjee, A. (2016). Schiff’s bases derived from llysine and aromatic aldehydes as green corrosion inhibitors for mild steel: experimental and theoretical studies. J. Mol. Liq. 215: 47–57, https://doi.org/10.1016/j.molliq.2015.12.027.Search in Google Scholar

Gupta, R.K., Malviya, M., Verma, C., Gupta, N.K., and Quraishi, M. (2017). Pyridine-based functionalized graphene oxides as a new class of corrosion inhibitors for mild steel: an experimental and DFT approach. RSC Adv. 7: 39063–39074, https://doi.org/10.1039/c7ra05825j.Search in Google Scholar

Jaso, A., Zarranz, B., Aldana, I., and Monge, A. (2003). Synthesis of new 2-acetyl and 2-benzoyl quinoxaline 1,4-di-N-oxide derivatives as anti-Mycobacterium tuberculosis agents. Eur. J. Med. Chem. 38: 791–800, https://doi.org/10.1016/s0223-5234(03)00137-5.Search in Google Scholar

Jayahari, L., Sasidhar, P.V., Reddy, P.P., Balu Naik, B., Gupta, A.K., and Singh, S.K. (2014). Formability studies of ASS 304 and evaluation of friction for Al in deep drawing setup at elevated temperatures using LS-DYNA. JKSUES 26: 21–31, https://doi.org/10.1016/j.jksues.2012.12.006.Search in Google Scholar

Kabanda, M.M. and Ebenso, E.E. (2012). Density functional theory and quantitative structure–activity relationship studies of some quinoxaline derivatives as potential corrosion inhibitors for copper in acidic medium. Int. J. Electrochem. Sci. 7: 8713–8733.Search in Google Scholar

Kanju, P.M., Parameshwaran, K., Sims, C., Bahr, B.A., Shonesy, B.C., and Suppiramaniam, V. (2008). Ampakine CX516 ameliorates functional deficits in AMPA receptors in a hippocampal slice model of protein accumulation. Exp. Neurol. 214: 55–61, https://doi.org/10.1016/j.expneurol.2008.07.010.Search in Google Scholar

Karzazi, Y., Belghiti, M.E., El-Hajjaji, F., and Hammouti, B. (2016a). Density functional theory modeling and Monte Carlo simulation assessment of N-substituted quinoxaline derivatives as mild steel corrosion inhibitors in acidic medium. J. Mater. Environ. Sci. 7: 3916–3929.Search in Google Scholar

Karzazi, Y., Belghiti, M.E., El-Hajjaji, F., Boudra, S., and Hammouti, B. (2016b). Density functional theory modeling and Monte Carlo simulation assessment of inhibition performance of two quinoxaline derivatives for steel corrosion. J. Mater. Environ. Sci. 7: 4011–4023.Search in Google Scholar

Kotkunde, N., Krishna, G., Shenoy, S.K., Gupta, A.K., and Singh, S.K. (2017). Experimental and theoretical investigation of forming limit diagram for Ti–6Al–4V alloy at warm condition. Int. J. Material Form. 10: 255–266, https://doi.org/10.1007/s12289-015-1274-3.Search in Google Scholar

Kumar, R., Chopra, R., and Singh, G. (2017). Electrochemical, morphological and theoretical insights of a new environmentally benign organic inhibitor for mild steel corrosion in acidic media. J. Mol. Liq. 241: 9–19, https://doi.org/10.1016/j.molliq.2017.05.130.Search in Google Scholar

Kumari, A., Jha, M.K., Lee, J.C., and Singh, R.P. (2016). Clean process for recovery of metals and recycling of acid from the leach liquor of PCBs. J. Clean. Prod. 112: 4826–4834, https://doi.org/10.1016/j.jclepro.2015.08.018.Search in Google Scholar

Laabaissi, T., Benhiba, F., Rouifi, Z., Missioui, M., Ourrak, K., Oudda, H., Ramli, Y., Warad, I., Allali, M., and Zarrouk, A. (2019). New quinoxaline derivative as a green corrosion inhibitor for mild steel in mild acidic medium: electrochemical and theoretical studies. Int. J. Corros. Scale Inhib. 8: 241–256.10.17675/2305-6894-2019-8-2-6Search in Google Scholar

Lee, S.H., Kim, N., Kim, S.J., Song, J., Gong, Y.D., and Kim, S.Y. (2013). Anti-cancer effect of a quinoxaline derivative GK13 as a transglutaminase 2 inhibitor. J. Canc. Res. Clin. Oncol. 139: 1279–1294, https://doi.org/10.1007/s00432-013-1433-1.Search in Google Scholar

Lgaz, H., Salghi, R., Jodeh, S., Ramli, Y., Larouj, M., Toumiat, K., Quraishi, M.A., Oudda, H., and Jodeh, W. (2016). Understanding the adsorption of quinoxaline derivatives as corrosion inhibitors for mild steel in acidic medium: experimental, theoretical and molecular dynamic simulation studies. J. Steel. Struct. Constr. 2: 1, https://doi.org/10.4172/2472-0437.1000111.Search in Google Scholar

Lin, Y.C., Wu, F., Wang, Q.W., Chen, D.D., and Singh, S.K. (2018). Microstructural evolution of a Ni–Fe–Cr-base superalloy during non-isothermal two-stage hot deformation. Vacuum 151: 283–293, https://doi.org/10.1016/j.vacuum.2018.02.034.Search in Google Scholar

Mahesh, R., Devadoss, T., Pandey, D.K., and Bhatt, S. (2011). Discovery of new anti-depressants from structurally novel 5-HT3 receptor antagonists: design, synthesis and pharmacological evaluation of 3-ethoxyquinoxalin-2-carboxamides. Bioorg. Med. Chem. Lett. 21: 1253–1256, https://doi.org/10.1016/j.bmcl.2010.12.064.Search in Google Scholar

Mansfeld, F. (1976). In: Fontana, M.G., and Stachle, R.W. (Eds.), Advances in corrosion science and technology, 6 ed. New York: Plenum press.Search in Google Scholar

Marenco, S. and Weinberger, D.R. (2006). Therapeutic potential of positive AMPA receptor modulators in the treatment of neuropsychiatric disorders. CNS Drugs 20: 173–185, https://doi.org/10.2165/00023210-200620030-00001.Search in Google Scholar

Mo, S., Luo, H.Q., and Li, N.B. (2017). Study on the influences of two thiazole flavor ingredients on Cu corrosion caused by chloride ion. J. Colloid Interface Sci. 505: 929–939, https://doi.org/10.1016/j.jcis.2017.06.075.Search in Google Scholar

Naveen, E., Ramnath, B.V., Elanchezhian, C., and Nazirudeen, S.M. (2017). Influence of organic corrosion inhibitors on pickling corrosion behaviour of sinter-forged C45 steel and 2% Cu alloyed C45 steel. J. Alloys Compd. 695: 3299–3309.10.1016/j.jallcom.2016.11.133Search in Google Scholar

Nordine, E., Rbaa, M., Tazouti, A., Kafssaoui, E.L.H., Brahim, L., Touir, R., and Touhami, M.E. (2019). Electrochemical and theoretical studies of novel quinoxaline derivatives as corrosion inhibitor for mild steel in HCl solution. Anal. Bioanal. Electrochem. 11: 1032–1056.Search in Google Scholar

Obot, I.B., Obi-Egbedi, N.O., and Odozi, N.W. (2010). Acenaphtho [1,2-b] quinoxaline as a novel corrosion inhibitor for mild steel in 0.5 M H2SO4. Corrosion Sci. 52: 923–926, https://doi.org/10.1016/j.corsci.2009.11.013.Search in Google Scholar

Olasunkanmi, L.O. and Ebenso, E.E. (2020). 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. 561: 104–116, https://doi.org/10.1016/j.jcis.2019.11.097.Search in Google Scholar

Olasunkanmi, L.O., Kabanda, M.M., and Ebenso, E.E. (2016). Quinoxaline derivatives as corrosion inhibitors for mild steel in hydrochloric acid medium: electrochemical and quantum chemical studies. Phys. E Low Dimens. Syst. 76: 109–126, https://doi.org/10.1016/j.physe.2015.10.005.Search in Google Scholar

Palomino, J.C. and Martin, A. (2013). Tuberculosis clinical trial update and the current anti-tuberculosis drug portfolio. Curr. Med. Chem. 20: 3785–3796, https://doi.org/10.2174/09298673113209990166.Search in Google Scholar

Pavani, K.V., Sunil Kumar, N., and Sangameswaran, B.B. (2012). Synthesis of lead nanoparticles by Aspergillus species. Pol. J. Microbiol. 61: 61–63, https://doi.org/10.33073/pjm-2012-008.Search in Google Scholar

Pereira, J.D.S., Neri, J.M., Emerenciano, D.P., de Freitas, G.R.S., Cansanção, M.B.M., Ângelo, F.M., de Souza, F., Menezes, F.G., and Maciel, M.A.M. (2018). Experimental and theoretical analysis of oxazinoquinoxaline derivative for corrosion inhibition of AISI 1018 steel. Quim. Nova 41: 243–250.10.21577/0100-4042.20170171Search in Google Scholar

Raja, P.B., Ismail, M.D., Ghoreishiamiri, S., Mirza, J., Ismail, M.C., Kakooei, S., and Rahim, A.A. (2016). Reviews on corrosion inhibitors – a short view. Chem. Eng. Commun. 203: 1145–1156, https://doi.org/10.1080/00986445.2016.1172485.Search in Google Scholar

Rbaa, M., Galai, M., El Faydy, M., Lakhrissi, Y., EbnTouhami, M., Zarrouk, A., and Lakhrissi, B. (2018). Synthesis and characterization of new quinoxaline derivatives of 8-hydroxyquinoline as corrosion inhibitors for mild steel in 1.0 M HCl medium. J. Mater. Environ. Sci. 9: 172–188, https://doi.org/10.26872/jmes.2018.9.1.21.Search in Google Scholar

Saranya, J., Sounthari, P., Kiruthuka, A., Parameswari, K., and Chitra, S. (2015a). The inhibiting effect of some quinoxaline derivative towards mild steel corrosion in acid media: chemical, electrochemical and theoretical studies. J. Mater. Environ. Sci. 6: 425–444.Search in Google Scholar

Saranya, J., Sounthari, P., Kiruthika, A., Saranya, G., Yuvarani, S., Parameswari, K., and Chitra, S. (2014). Experimental and quantum chemical studies on the inhibition potential of some quinoxaline derivatives for mild steel in acid media. Orient. J. Chem. 30: 1719–1736.10.13005/ojc/300431Search in Google Scholar

Saranya, J., Sounthari, P., Parameswari, K., and Chitra, S. (2015b). Adsorption and density functional theory on corrosion of mild steel by a quinoxaline derivative. Der Pharma Chem. 7: 187–196.Search in Google Scholar

Saranya, J., Sounthari, P., Parameswari, K., and Chitra, S. (2016a). Acenaphtho [1,2-b] quinoxaline and acenaphtho [1,2-b] pyrazine as corrosion inhibitors for mild steel in acid medium. Measurement 77: 175–186, https://doi.org/10.1016/j.measurement.2015.09.008.Search in Google Scholar

Saranya, J., Sowmiya, M., Sounthari, P., Parameswari, K., Chitra, S., and Senthilkumar, K. (2016b). N-heterocycles as corrosion inhibitors for mild steel in acid medium. J. Mol. Liq. 216: 42–52, https://doi.org/10.1016/j.molliq.2015.12.096.Search in Google Scholar

Singh, S.K., Dixit, A., and Kumar, D.R. (2008). Optimization of the design parameters of modified die in hydro-mechanical deep drawing using LS-DYNA. Int. J. Adv. Manuf. Technol. 38: 32–37, https://doi.org/10.1007/s00170-007-1083-z.Search in Google Scholar

Singh, S.K., Gupta, A.K., and Mahesh, K. (2010). A study on the extent of ironing of EDD steel at elevated temperature. CIRP J. Manuf. Sci. Technol. 3: 73–79, https://doi.org/10.1016/j.cirpj.2010.07.002.Search in Google Scholar

Srinivasa Reddy, V., Seshagiri Rao, M.V., and Shrihari, S. (2019). Appraisal of processing techniques for recycled aggregates in concrete. IJEAT 8: 1661–1665.10.35940/ijeat.F8407.088619Search in Google Scholar

Surakanti, R., Sanivarapu, S., Thulluri, C., Iyer, P.S., Tangirala, R.S., Gundla, R., Addepally, U., Murthy, Y.L.N., Velide, L., and Sen, S. (2013). Synthesis of privileged scaffolds by using diversity-oriented synthesis. Chem. Asian J. 8: 1168–1176, https://doi.org/10.1002/asia.201201203.Search in Google Scholar

Suresh, M., Lavanya, P., Sudhakar, D., Vasu, K., and Venkata Rao, C. (2010). Synthesis and biological activity of 8-chloro-[1,2,4] triazolo [4,3-a] quinoxalines. J. Chem. Pharmaceut. Res. 2: 497–504.Search in Google Scholar

Tazouti, A., Galai, M., Touira, R., EbnTouhami, M., Zarrouk, A., Ramli, Y., Saraçoğlu, M., Kaya, S., Kandemirli, F., and Kaya, C. (2016). Experimental and theoretical studies for mild steel corrosion inhibition in 1.0 M HCl by three new quinoxalinone derivatives. J. Mol. Liq. 221: 815–832, https://doi.org/10.1016/j.molliq.2016.03.083.Search in Google Scholar

Torres, E., Moreno, E., Ancizu, S., Barea, C., Galiano, S., Aldana, I., Monge, A., and Silanes, S.P. (2011). New 1,4-di-N-oxide-quinoxaline-2-ylmethylene isonicotinic acid hydrazide derivatives as anti-Mycobacterium tuberculosis agents. Bioorg. Med. Chem. Lett. 21: 3699–3703, https://doi.org/10.1016/j.bmcl.2011.04.072.Search in Google Scholar

Vandana, S. and Yadav, M. (2020). Computational and electrochemical analysis on quinoxalines as corrosion inhibitors for mild steel in acidic medium. J. Mol. Liq. 297: 111883, https://doi.org/10.1016/j.molliq.2019.111883.Search in Google Scholar

Verma, C., Ebenso, E.E., and Quraishi, M.A. (2017). Ionic liquids as green and sustainable corrosion inhibitors for metals and alloys: an overview. J. Mol. Liq. 233: 403–414, https://doi.org/10.1016/j.molliq.2017.02.111.Search in Google Scholar

Verma, C., Haque, J., Quraishi, M.A., and Ebenso, E.E. (2019). Aqueous phase environmental friendly organic corrosion inhibitors derived from one step multicomponent reactions: a review. J. Mol. Liq. 275: 18–40, https://doi.org/10.1016/j.molliq.2018.11.040.Search in Google Scholar

Verma, C., Olasunkanmi, L., Obot, I., Ebenso, E.E., and Quraishi, M.A. (2016). 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: 15639–15654, https://doi.org/10.1039/c5ra27417f.Search in Google Scholar

Vicente, E., Charnaud, S., Bongard, E., Villar, R., Burguete, A., Solano, B., Ancizu, S., Perez-Silanes, S., Aldana, I., Vivas, L., et al.. (2008). Synthesis and antiplasmodial activity of 3-furyl and 3-thienylquinoxaline-2-carbonitrile 1,4-di-N-oxide derivatives. Molecules 13: 69–77, https://doi.org/10.3390/molecules13010069.Search in Google Scholar

Vieira, M., Pinheiro, C., Fernandes, R., Noronha, J.P., and Prudencio, C. (2014). Antimicrobial activity of quinoxaline 1,4-dioxide with 2- and 3-substituted derivatives. Microbiol. Res. 169: 287–293, https://doi.org/10.1016/j.micres.2013.06.015.Search in Google Scholar

Wu, B., Cao, J.L., and Kang, L. (2017). Influence of local corrosion on behavior of steel I-beams subjected to end patch loading: experiments. J. Constr. Steel Res. 135: 150–161, https://doi.org/10.1016/j.jcsr.2017.04.020.Search in Google Scholar

Zarrok, H., Zarrouk, A., Salghi, R., Assouag, M., Hammouti, B., Oudda, H., Boukhris, S., Al-Deyab, S.S., and Warad, I. (2013a). Inhibitive properties and thermodynamic characterization of quinoxaline derivative on carbon steel corrosion in acidic medium. Der Pharm. Lett. 5: 43–53.Search in Google Scholar

Zarrok, H., Zarrouk, A., Salghi, R., Elmahi, B., Hammouti, B., Al-Deyab, S.S., EbnTouhami, M., Bouachrine, M., Oudda, H., and Boukhris, S. (2013b). An experimental and theoretical investigation of adsorption characteristics of a quinoxaline compound as corrosion inhibitor at carbon steel/hydrochloric acid interface. Int. J. Electrochem. Sci. 8: 11474–11491.10.1016/S1452-3981(23)13198-1Search in Google Scholar

Zarrok, H., Zarrouk, A., Salghi, R., Oudda, H., Hammouti, B., EbnTouhami, M., Bouachrine, M., and Pucci, O.H. (2012). A combined experimental and theoretical study on the corrosion inhibition and adsorption behaviour of quinoxaline derivative during carbon steel corrosion in hydrochloric acid. Port. Electrochim. Acta 30: 405–417, https://doi.org/10.4152/pea.201206405.Search in Google Scholar

Zarrouk, A., Zarrok, H., Ramli, Y., Bouachrine, M., Hammouti, B., Sahibed-dine, A., and Bentiss, F. (2016). Inhibitive properties, adsorption and theoretical study of 3,7-dimethyl-1-(prop-2-yn-1-yl)quinoxalin-2(1H)-one as efficient corrosion inhibitor for carbon steel in hydrochloric acid solution. J. Mol. Liq. 222: 239–252, https://doi.org/10.1016/j.molliq.2016.07.046.Search in Google Scholar

Zouitini, A., Kandri Rodi, Y., Elmsellem, H., Steli, H., Ouazzani, C.F., Ali Shariati, M., Janati, A.E., Ouzidan, Y., Sebbar, N.K., and Essassi, E.M. (2017). Experimental and theoretical studies on inhibition of quinoxaline derivatives against corrosion of mild steel in acidic medium. J. Mater. Environ. Sci. 8: 4105–4116.Search in Google Scholar

Zouitini, A., Kandri Rodi, Y., Ouzidan, Y., Ouazzani Chahdi, F., Mokhtarі, M., Abdеl-Rahman, I., Essassi, E.M., Aouniti, A., Hammouti, B., and Elmsellem, H. (2019). Corrosion inhibition studies of new synthesized 1,4-dioctyl-6-methyl-1,4-dihydroquinoxaline-2,3-dione on mild steel in 1.0 M HCl solution using gravimetric and electrochemical techniques supported by theoretical DFT calculations. Int. J. Corros. Scale Inhib. 8: 225–240.10.17675/2305-6894-2019-8-2-5Search in Google Scholar

Received: 2020-04-24
Accepted: 2020-11-16
Published Online: 2021-02-04
Published in Print: 2021-04-27

© 2021 Walter de Gruyter GmbH, Berlin/Boston

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