References

CORROSION INHIBITION OF 1,4-DIMETHYL PHENYL-N,N-DIMETHYLANILINIUM DIBROMIDE SALT ON MILD STEEL IN HCL SOLUTION


[1] T. Tüken, B. Yazici and M. Erbil, The effect of nicotinamide on iron corrosion in chloride solutions, Turkish Journal of Chemistry 26(5) (2002), 735-742.

[2] J. D. Talati, M. N. Desai and N. K. Shah, meta-Substituted aniline-N-salicylidenes as corrosion inhibitors of zinc in sulphuric acid, Materials Chemistry and Physics 93(1) (2005), 54-64.
DOI: https://doi.org/10.1016/j.matchemphys.2005.02.004

[3] A. Nahlé, I. Abu-Abdoun and I. Abdel-Rahman, Corrosion inhibition of (anthraquinone-2-ylmethyl) triphenyl phosphonium bromide on mild steel in HCl solution, Bulletin of Electrochemistry 23 (2007), 201-209.

[4] A. Popova, Temperature effect on mild steel corrosion in acid media in presence of azoles, Corrosion Science 49(5) (2007), 2144-2158.
DOI: https://doi.org/10.1016/j.corsci.2006.10.020

[5] I. Aiad and N. A. Negm, Some corrosion inhibitors based on Schiff base surfactants for mild steel equipments, Journal of Dispersion Science and Technology 30(8) (2009), 1142-1147.
DOI: https://doi.org/10.1080/01932690802701598

[6] K. Tebbji, A. Aouniti, A. Attayibat, B. Hammouti, H. Oudda, M. Benkaddour, S. Radi and A. Nahlé, Inhibition efficiency of two bipyrazole derivatives on steel corrosion in hydrochloric acid media, Indian Journal of Chemical Technology 18(3) (2011), 244-253.

[7] A. Nahlé, Ideisan I. Abu-Abdoun and I. Abdel-Rahman, Inhibition of mild steel corrosion by 3-benzoylmethyl benzimidazolium hexafluoroantimonate in acidic solution, International Journal of Corrosion (2012), Article ID 246013, 10 pages.
DOI: https://doi.org/10.1155/2012/246013

[8] A. Nahlé, Ideisan I. Abu-Abdoun and I. Abdel-Rahman, Effect of temperature on the corrosion inhibition of trans-4-hydroxy-4’-stilbazole on mild steel in HCl solution, International Journal of Corrosion (2012), Article ID 380329, 7 pages.
DOI: https://doi.org/10.1155/2012/380329

[9] R. Baskar, D. Kesavan, M. Gopiraman and K. Subramanian, Corrosion inhibition of mild steel in 1.0M hydrochloric acid medium by new photo-cross-linkable polymers, Progress in Organic Coatings 77(4) (2014), 836-844.
DOI: https://doi.org/10.1016/j.porgcoat.2014.01.013

[10] B. P. Markhali, R. Naderi, M. Sayebani and M. Mahdavian, Corrosion inhibition of some azole derivatives on carbon steel in hydrochloric acid solution, Anti-Corrosion Methods and Materials 61(5) (2014), 300-306.
DOI: https://doi.org/10.1108/ACMM-05-2013-1266

[11] A. Nahlé, I. Abu-Abdoun and I. Abdel-Rahman, Corrosion inhibition of 1-vinylimidazole-3-phenacyl hexafluoroantimonate salt on mild steel in HCl solution, International Journal of Corrosion and Scale Inhibition 4(3) (2015), 255-268.
DOI: https://doi.org/10.17675/2305-6894-2015-4-3-255-268

[12] N. K. Gupta, C. Verma, M. A. Quraishi and A. K. Mukherjee, Schiff’s bases derived from L-lysine and aromatic aldehydes as green corrosion inhibitors for mild steel: Experimental and theoretical studies, Journal of Molecular Liquids 215 (2016), 47-57.
DOI: https://doi.org/10.1016/j.molliq.2015.12.027

[13] M. A. J. Mazumder, Synthesis and evaluation of new isoxazolidine derivatives of aldehyde as corrosion inhibitors for mild steel corrosion in acidic and saline media, International Journal of Electrochemical Science 11(5) (2016), 4050-4075.
DOI: https://doi.org/10.20964/110257

[14] I. Chakib, H. Elmsellem, N. K. Sebbar, S. Lahmidi, A. Nadeem, E. M. Essassi, Y. Ouzidan, I. Abdel-Rahman, F. Bentiss and B. Hammouti, Electrochemical, gravimetric and theoretical evaluation of (4Z)-2,5-dimethyl-4-(4-methylpyrimido[1,2-a]benzimidazol-2(1H)-ylidene )-2,4-dihydro-3H-pyrazol-3-one (P1) as a corrosion inhibitor for mild steel in 1M HCl solution, Journal of Materials and Environmental Science 7(6) (2016), 1866-1881.

[15] M. Ellouz, H. Elmsellem, N. K. Sebbar, H. Steli, K. Al Mamari, A. Nadeem, Y. Ouzidan, E. M. Essassi, I. Abdel-Rahaman and P. Hristov, Anti-corrosive properties of benzothiazine derivatives on mild steel corrosion in 1M HCl solution: Experimental and theoretical studies, Journal of Materials and Environmental Science 7(7) (2016), 2482-2497.

[16] M. Ellouz, N. K. Sebbar, H. Elmsellem, H. Steli, I. Fichtali, M. M. Mohamed Abdelahi, K. Al Mamari, E. M. Essassi and I. Abdel-Rahaman, Inhibitive properties and quantum chemical studies of 1,4-benzothiazine derivatives on mild steel corrosion in acidic medium, Journal of Materials and Environmental Science 7(8) (2016), 2806-2819.

[17] M. Y. Hjouji, M. Djedid, H. Elmsellem, Y. Kandri Rodi, Y. Ouzidan, F. Ouazzani Chahdi, N. K. Sebbar, E. M. Essassi, I. Abdel-Rahman and B. Hammouti, Corrosion inhibition of mild steel in hydrochloric acid solution by pyrido[2,3-b]pyrazine derivative: Electrochemical and theoretical evaluation, Journal of Materials and Environmental Science 7(4) (2016), 1425-1435.

[18] S. Lahmidi, A. Elyoussfi, A. Dafali, H. Elmsellem, N. K. Sebbar, L. El Ouasif, A. F. Jilalat, B. El Mahi, E. M. Essassi, I. Abdel-Rahman and B. Hammouti, Corrosion inhibition of mild steel by two new 1,2,4-triazolo[1,5-a]pyrimidine derivatives in 1M HCl: Experimental and computational study, Journal of Materials and Environmental Science 8(1) (2017), 225-237.

[19] B. C. Ateya, B. E. El-Anadouli and F. M. El-Nizamy, The effect of thiourea on the corrosion kinetics of mild steel in Corrosion Science 24(6) (1984), 497-507.
DOI: https://doi.org/10.1016/0010-938X(84)90032-5

[20] A. S. Fouda, M. N. Mousa, F. I. Taha and A. I. Elneanaa, The role of some thiosemicarbazide derivatives in the corrosion inhibition of aluminum in hydrochloric acid, Corrosion Science 26(9) (1986), 719-726.
DOI: https://doi.org/10.1016/0010-938X(86)90035-1

[21] S. N. Raicheva, B. V. Aleksiev and E. I. Sokolova, The effect of the chemical structure of some nitrogen- and sulphur-containing organic compounds on their corrosion inhibiting action, Corrosion Science 34(2) (1993), 343-350.
DOI: https://doi.org/10.1016/0010-938X(93)90011-5

[22] S. H. Sanad, A. A. Ismail and A. A. El-Meligi, The effect of temperature on the corrosion and corrosion inhibition of steel alloys in hydrochloric acid solutions, Bulletin of Electrochemistry 11(10) (1995), 462-469.

[23] A. Nahlé, Effect of temperature on the corrosion inhibition of carbon steel in HCl solutions, Bulletin of Electrochemistry 17(5) (2001), 221-226.

[24] A. Nahlé, Inhibition of corrosion of iron in HCl solution by semicarbazides and thiosemicarbazides, Bulletin of Electrochemistry 21(6) (2005), 275-281.

[25] A. Nahlé, I. Abdel-Rahman and M. Alfarouk, Effect of temperature on the inhibition of corrosion of carbon steels by semicarbazides and thiosemicarbazides, Bulletin of Electrochemistry 21(8) (2005), 353-361.

[26] K. F. Khaled and N. S. Abdel-Shafi, Corrosion inhibition of mild steel by some sulfur containing compounds: Artificial neural network modeling, Journal of Materials and Environmental Science 5(4) (2014), 1288-1297.

[27] A. Nahlé, I. Abu-Abdoun and I. Abdel-Rahman, Electrochemical studies of the effect of trans-4-hydroxy-4’-stilbazole on the corrosion inhibition of mild steel in HCl solution, Anti-Corrosion Methods and Materials 54(4) (2007), 244-248.
DOI: https://doi.org/10.1108/00035590710762393

[28] A. Nahlé, M. Al-Khayat, I. Abu-Abdoun and I. Abdel-Rahman, Corrosion inhibition of mild steel by P,P’-Bis (triphenylphosphonio) methyl benzophenone dibromide in HCl solution, Anti-Corrosion Methods and Materials 60(1) (2013), 20-27.
DOI: https://doi.org/10.1108/00035591311287410

[29] A. Nahlé, I. Abu-Abdoun and I. Abdel-Rahman, Corrosion inhibition on mild steel in 1.0M HCl solution by 1-vinylimidazolium-3-methyltriphenyl phosphonium dihexafluoroantimonate salt, Journal of Materials and Environmental Science 7(8) (2016), 2955-2964.

[30] Xiang Gao, Shaotong Liu, Haifeng Lu, Feng Gao and Houyi Ma, Corrosion inhibition of iron in acidic solutions by monoalkyl phosphate esters with different chain lengths, Industrial & Engineering Chemistry Research 54(7) (2015), 1941-1952.
DOI: https://doi.org/10.1021/ie503508h

[31] K. Kobayashi, K. Shimizu and M. Iida, Structural effects of organic compounds as corrosion inhibitors for hydrogen entry into iron in sulfuric acid, Corrosion Science 35(5-8) (1993), 1431-1435.
DOI: https://doi.org/10.1016/0010-938X(93)90368-Q

[32] L. D. Skryler, E. A. Streltsova and T. L. Skryleva, Hydrocarbon chain length and inhibitive action of alkylammonium chlorides, Zashchita Metallov 27(6) (1991), 977-980.

[33] A. Popova, M. Christov, S. Raicheva and E. Sokolova, Adsorption and inhibitive properties of benzimidazole derivatives in acid mild steel corrosion, Corrosion Science 46(6) (2004), 1333-1350.
DOI: https://doi.org/10.1016/j.corsci.2003.09.025

[34] B. B. Damaskin, O. A. Pietrij and W. W. Batrokov, Adsorpcja organiczeskich sojedinienij na electrodach, Moskva, 1968.

[35] A. S. Fouda, A. Abd El-Aal and A. B. Kandil, The effect of some phthalimide derivatives on the corrosion behaviour of copper in nitric acid, Anti-Corrosion Methods and Materials 52(2) (2005), 96-101.
DOI: https://doi.org/10.1108/00035590510584807