Research Progress on Anti-Corrosive Properties of Graphene Modified Coatings

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Graphene modified coatings have attracted extensive attention in recent years due to their excellent corrosion resistance and broad application prospects in the field of anti-corrosion. However, large-scale applications of graphene coatings were seldom reported, which is mainly attributed to the lack of fundamental research on the anti-corrosive mechanism and the long-term service performance evaluation of graphene modified coatings in actual working conditions. In the present work, the influence of the characteristics of corrosive medium, the content of graphene, the structure and morphology of graphene and the external environmental conditions on the anti-corrosive performance of graphene modified coatings were systematically reviewed. The deficiencies in the research of anti-corrosive performance of graphene modified coatings were summarized. The future work were prospected for the anti-corrosive performance and applications of graphene modified coatings in oil and gas exploration.

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1140-1147

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May 2020

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[1] D. Liu, W.J. Zhao, S. Liu, Q.H. Cen, Q.J. Xue, Comparative tribological and corrosion resistance properties of epoxy composite coatings reinforced with functionalized fullerene C60 and graphene, Surf. Coat. Technol. 286 (2016) 354-364.

DOI: 10.1016/j.surfcoat.2015.12.056

Google Scholar

[2] C. Feng, L.J. Zhu, Y.Q. Cao,Y. Di, Z.X. Yu, G.H. Gao, Performance of coating based on APTMS/GO/Epoxy composite for corrosion protection of steel, Int. J. Electrochem. Sci. 13 (2018) 8827-8837.

DOI: 10.20964/2018.09.27

Google Scholar

[3] Y. Ma, H.H. Di, Z.X. Yu, L. Liang, L. Lv, Y. Pan, Y.Y. Zhang, D. Yin, Fabrication of silica-decorated graphene oxide nanohybrids and the properties of composite epoxy coatings research, Appl. Surf. Sci. 360 (2016) 936-945.

DOI: 10.1016/j.apsusc.2015.11.088

Google Scholar

[4] C. Feng, L.J. Zhu, Y.Q. Cao, Y. Di, Z.X. Yu, G.H. Gao, Performance of coating based on β-CD-g-GO/epoxy composites for the corrosion protection of steel, Int. J. Electrochem. Sci. 14 (2019) 1855-1868.

DOI: 10.20964/2019.02.12

Google Scholar

[5] Z.X. Yu, H.H. Di, Y. Ma, L. Lv, Y. Pan, C.L. Zhang, Fabrication of graphene oxide–alumina hybrids to reinforce the anti-corrosion performance of composite epoxy coatings, Appl. Surf. Sci. 351 (2015) 986-996.

DOI: 10.1016/j.apsusc.2015.06.026

Google Scholar

[6] D.Y. Shen, J.H. Yu, N. Jiang, Z.L. Zhao, Research progress in properties of graphene/epoxy resin matrix composites, Hot Processing Technology. 46(8) (2017) 27-31.

Google Scholar

[7] T. Monetta, A. Acquesta, F. Bellucci, Graphene/epoxy coating as multifunctional material for aircraft structures, Aerospace. 2 (2015) 423-434.

DOI: 10.3390/aerospace2030423

Google Scholar

[8] L.H. Zhang, R.S. Li, D. Wang, W.Y. Zhang, C.G. Liu, X.M. Wang, Preparation and anti-corrosion properties of polyaniline/graphene waterborne coatings, J Electrical Engineering of China. 35 (2015) 170-176. (In Chinese).

Google Scholar

[9] C.H. Chang, T.C. Huang, C.W. Peng, T.C. Yeh, H.I. Lu, W.I. Hung, C.J. Weng, T.I. Yang, J.M. Yeh, Novel anti-corrosion coatings prepared from polyaniline/graphene composites, Carbon. 50 (2012) 5044-5051.

DOI: 10.1016/j.carbon.2012.06.043

Google Scholar

[10] M.T. Mo, W.J. Zhao, Z.F. Chen, Q.Y. Yu, Z.X. Zeng, X.D. Wu, Q.J. Xue. Excellent tribological and anti-corrosion performance of polyurethane composite coatings reinforced with functionalized graphene and graphene oxide nanosheets, RSC Adv. 5 (2015) 56486-56497.

DOI: 10.1039/c5ra10494g

Google Scholar

[11] D. Prasai, J.C. Tuberquia, R.R. Harl, G.K. Jennings, K.I. Bolotin, Graphene: Corrosion-inhibiting coating, ACS Nano. 6(2) (2012) 1102-1108.

DOI: 10.1021/nn203507y

Google Scholar

[12] K. Huang, X.G. Zeng, G.F. Pei, J.Y. Zhang, C. Chao, Research on anticorrosive performance of graphene/epoxy composite conductive coatings, Paint & Coatings Industry. 45(1) (2015) 17-43. (In Chinese).

Google Scholar

[13] A. Janković, S. Eraković, M. Mitrić, I. Z. Matić, Z. D. Juranić, G. C.P. Tsui, C. Tang, V. Mišković-Stanković, K. Y. Rhee, S. J. Park, Bioactive hydroxyapatite/graphene composite coating and its corrosion stability in simulated body fluid, J. Alloys Compd. 624 (2015) 148-157.

DOI: 10.1016/j.jallcom.2014.11.078

Google Scholar

[14] C.L. Wen, X.Z. Zhan, X.G. Huang, F. Xu, L.J. Luo, C.S. Xia, Characterization and corrosion properties of hydroxyapatite/graphene oxide bio-composite coating on magnesium alloy by one-step micro-arc oxidation method, Surf. Coat. Technol. 317 (2017) 125-133.

DOI: 10.1016/j.surfcoat.2017.03.034

Google Scholar

[15] Y.R Fu, Application prospect of graphene in oil and gas field development engineering, J. Engineering Studies. 9(2) (2017) 199-204. (In Chinese).

DOI: 10.3724/sp.j.1224.2017.00199

Google Scholar

[16] H. Kumawat, Use of graphene-based composite pipe materials for transportation of oil and gas, Proceedings of the ASME 2015 India Oil and Gas Pipeline Conference. IOGPC 2015, April 17-18, New Delhi, India.

DOI: 10.1115/iogpc2015-7952

Google Scholar

[17] K. Hoffmann, M. Stratmann, The delamination o f organic coatings from rusty steel substrates, Corros. Sci. 1993, 34(10): 1625-1645.

DOI: 10.1016/0010-938x(93)90037-h

Google Scholar

[18] Y.X. Xu, C.W. Yan, Y.M. Gao, C.N. Cao, Corrosion of metals under coatings and failure of coatings in atmospheric environment, J Chinese Society for Corrosion and Protection, 22(4) (2002) 249-256. (In Chinese).

Google Scholar

[19] B B. Ramezanzadeh, A. Ahmadi, M. Mahdavian, Enhancement of the corrosion protection performance and cathodicde lamination resistance of epoxy coating through treatment of steel substrate by a novel nanometric sol-gel based silane composite film filled with functionalized graphene oxide nanosheets, Corros. Sci. 109 (2016) 182-205.

DOI: 10.1016/j.corsci.2016.04.004

Google Scholar

[20] J. M. Yeh, K. C. Chang, H. I. Lu, C. H. Chang, C. H. Hsu, W. F. Ji, W. Y. Li, T. L. Chuang, W. R. Liu, M. H. Tsai, Advanced anti-corrosive coatings prepared from electroactive polyimide/grapheme nanocomposites with synergistic effects of redox catalytic capability and gas barrier properties, eXPRESS Polym. Lett. 8 (2014) 243-255.

DOI: 10.3144/expresspolymlett.2014.28

Google Scholar

[21] J.C. Hu, Y.F. Ji, Y.Y. Shi, F. Hui, H.L. Duan, M. Lanza, A Review on the use of graphene as a protective coating against corrosion, Annals of Materials Science & Engineering. 1(3) (2014) 1-16.

Google Scholar

[22] S. Chen, L. Brown, M. Levendorf, W. Cai, S.Y. Ju, J. Edgeworth, Oxidation resistance of graphene-coated Cu and Cu/Ni alloy, ACS Nano. 5(2) (2011) 1321-1327.

DOI: 10.1021/nn103028d

Google Scholar

[23] X. Li, W. Cai, L. Colombo, R.S. Ruoff, Evolution of graphene growth on Ni and Cu by carbon isotope labeling, Nano Lett. 9(12) (2009) 4268-4272.

DOI: 10.1021/nl902515k

Google Scholar

[24] W. Cai, R.D. Piner, F.J. Stadermann, S. Park, M.A. Shaibat, Y. Ishii, D. Yang, A. Velamakanni, S.J. An, M. Stoller, J. An, D. Chen, R.S. Ruoff, Synthesis and solid-state NMR structural characterization of 13C-labeled graphite oxide, Science. 2008; 321: 1815-1817.

DOI: 10.1126/science.1162369

Google Scholar

[25] A.N. Obraztsov, E.A. Obraztsova, A.V. Tyurnina, A.A. Zolotukhin, Chemical vapor deposition of thin graphite films of nanometer thickness, Carbon. 45 (2007) 2017-2021.

DOI: 10.1016/j.carbon.2007.05.028

Google Scholar

[26] A. Reina, H. Son, L.Y. Jiao, B. Fan, M.S. Dresselhaus, Z.F. Liu, J. Kong, Transferring and identification of single- and few-layer graphene on arbitrary substrates, J. Phys. Chem. C. 112 (2008) 17741-17744.

DOI: 10.1021/jp807380s

Google Scholar

[27] M. Schriver, W. Regan, W.J. Gannett, A.M. Zaniewski, M.F. Crommie, A. Zettl, Graphene as a long-term metal oxidation barrier: worse than nothing, ACS Nano. 7 (2013) 5763-5768.

DOI: 10.1021/nn4014356

Google Scholar

[28] H.H. Di, Z.Y. Yu, Y. Ma, Y. Pan, H. Shi, L. Lv, F. Li, C. Wang, T. Long, Y. He, Anchoring calcium carbonate on graphene oxide reinforced with anti-corrosive properties of composite epoxy coatings, Polym. Adv. Technol. 27 (2016) 915-921.

DOI: 10.1002/pat.3748

Google Scholar

[29] L. Gu, S. Liu, H.C. Zhao, H.B. Yu, Facile preparation of water-dispersible graphene sheets stabilized by carboxylated oligoanilines and their anti-corrosion coatings, ACS Appl. Mater. Interfaces. 7 (2015) 17641-17648.

DOI: 10.1021/acsami.5b05531

Google Scholar

[30] Z.X. Yu, L. Lv, Y. Ma, H.H. Di, Y. He, Covalent modification of graphene oxide by metronidazole for reinforce anti-corrosion of epoxy coatings, RSC Adv. 6 (2016) 18217-18226.

DOI: 10.1039/c5ra23595b

Google Scholar

[31] S. Pourhashem, M. R. Vaezi, A. Rashidi, M. R. Bagherzadeh, Distinctive roles of silane coupling agents on the corrosion inhibition performance of graphene oxide in epoxy coatings, Prog. Org. Coat. 111 (2017) 47-56.

DOI: 10.1016/j.porgcoat.2017.05.008

Google Scholar

[32] H.C. Lin, M.C. Li, Corrosion process for metals beneath coating, Corro Sci Protect Tech, 14(3) (2002)180-181. (In Chinese).

Google Scholar

[33] X.H. Sun, J. Gao, W.M. Guo, W.H. Cheng, X.G. Li, Seawater temperature on the protection properties of epoxy coatings used in deep sea, J Uni Sci Tech Beijing. 33(5) (2011) 570-574. (In Chinese).

Google Scholar

[34] H. Yu, Y. He, Effect of CO2/H2S on anti-corrosion property of epoxy coatings, Corros Protect. 14(12) (2011) 55-57. (In Chinese).

Google Scholar

[35] C.X. Wan, S.B. Xiao, Q.T. Huang, C.T. Kuang, Y. Yang, Y.W. Liao, Preparation and properties of graphene/raw paint composite antistatic coatings, Corros Protect. 38(7) (2017) 533-542. (In Chinese).

Google Scholar

[36] Z.X. Yu, Y. Ma, Y. He, L. Ling, L. Lv, G.Y. Zeng, D. Yin, Preparation of TiO2-GO and anti-corrosion performances of TiO2-GO/epoxy coatings, Acta Material Composite Sinica. 32(4) (2015) 1017-1024. (In Chinese).

Google Scholar