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[1]韩文静*,宋进朝,张晓光.镁合金表面防护中石墨烯基多功能涂层的应用进展[J].电镀与精饰,2023,(4):70-76.[doi:10.3969/j.issn.1001-3849.2023.04.012]
 Han Wenjing*,Song Jinchao,Zhang Xiaoguang.Process of the application of the graphene-based multifunctional coating in the surfaces protection of magnesium alloy[J].Plating & Finishing,2023,(4):70-76.[doi:10.3969/j.issn.1001-3849.2023.04.012]
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镁合金表面防护中石墨烯基多功能涂层的应用进展

参考文献/References:



[1] Shi D F, Pérez-Prado M T, Cepeda-Jiménez C M. Effect of solutes on strength and ductility of Mg alloys[J]. Acta Materialia, 2019, 180: 218-230.

[2] Sun Y Q, Peng L J, Huang G J, et al. Effects of Mg addition on the microstructure and softening resistance of Cu-Cr alloys[J]. Materials Science and Engineering: A, 2020, 776: 139009.

[3] Ayman E, Junko U, Katsuyoshi K. Application of rapid solidification powder metallurgy to the fabrication of high-strength, high-ductility Mg-Al-Zn-Ca-La alloy through hot extrusion[J]. Acta Material, 2011, 59: 273-282.

[4] Chu J H, Tong L B, Jiang Z H, et al. A comparison study of Ce/La and Ca microalloying on the bio-corrosion behaviors of extruded Mg-Zn alloys[J]. Journal of Magnesium and Alloys, 2020, 8(4): 1269-1280.

[5] Guo K W. A review of magnesium/magnesium alloys corrosion and its protection[J]. Recent Patents on Corrosion Science, 2010, 2: 13 – 21.

[6] Ma K J, Mohannad M, Al Bosta S, et al. Preparation of self-lubricating composite coatings through a micro-arc plasma oxidation with graphite in electrolyte solution[J]. Surface and Coatings Technology , 2014, 259: 318-324.

[7] Askarnia R, Ghasemi B, Fardi S, et al. Improvement of tribological, mechanical and chemical properties of Mg alloy (AZ91D) by electrophoretic deposition of alumina/GO coating[J]. Surface & Coatings Technology, 2020, 403: 126410.

[8] Zhang Y L, Chen F, Zhang Y, et al. Influence of graphene oxide additive on the tribological and electrochemical corrosion properties of a PEO coating prepared on AZ31 magnesium alloy[J]. Tribology International, 2020, 146: 106135.

[9] Gnedenkov S V, Sinebryukhov S L, Mashtalyar D V, et al. Composite fluoropolymer coatings on Mg alloys formed by plasma electrolytic oxidation in combination with electrophoretic deposition[J]. Surface and Coatings Technology, 2015, 283: 347-352.

[10] Zhao J M, Xie X, Zhang C. Effect of the graphene oxide additive on the corrosion resistance of the plasma electrolytic oxidation coating of the AZ31 magnesium alloy[J]. Corrosion Science, 2017, 114: 146 – 155.

[11] Han B J, Yang Y, Li J, et al. Effects of the graphene additive on the corrosion resistance of the plasma electrolytic oxidation (PEO) coating on the AZ91 magnesium alloy[J]. International Journal of Electrochemical Science, 2018, 13(9): 9166-9182.

[12] Khiabani A B, Rahimi S, Yarmand B, et al. Electrophoretic deposition of graphene oxide on plasma electrolytic oxidized magnesium implants for bone tissue engineering applications[J]. Materials Today Proceedings, 2018, 5(7): 15603-15612.

[13] Tong L B, Zhang J B, Xu C, et al. Enhanced corrosion and wear resistances by graphene oxide coating on the surface of Mg-Zn-Ca alloy[J]. Carbon, 2016, 109: 340-351.

[14] Nair R R, Wu H A, Jayaram P N, et al. Unimpeded permeation of water through helium-leak-tight graphene-based membranes[J]. Science, 2012, 335: 442-444.

[15] 周星怡 . 基于镁合金表面防腐耐磨一体化有机 / 无机复合涂层制备及其性能研究 [D]. 常州 : 常州大学 , 2021.

[16] Maurya R, Siddiqui A R, Katiyar P K, et al. Mechanical, tribological and anti-corrosive properties of polyaniline/graphene coated Mg-9Li-7Al-1Sn and Mg-9Li-5Al-3Sn-1Zn alloys[J]. Journal of Materials Science & Technology, 2019, 35(8): 1767-1778.

[17] 楚景慧 . 镁合金表面石墨烯基涂层的仿生构筑及防护机制研究 [D]. 长春 : 吉林大学 , 2021.

[18] 魏梦媛 . 基于改性氧化石墨烯的疏水涂层制备及其性能研究 [D]. 西安 : 陕西科技大学 , 2018.

[19] 赵碧芳 . 镁合金表面多功能一体化涂层的构筑研究 [D]. 西安 : 西安建筑科技大学 , 2021.

[20] Nine M J, Cole M A, Johnson L, et al. Robust superhydrophobic graphene-based composite coatings with self-cleaning and corrosion barrier properties[J]. ACS Applied Materials & Interfaces, 2015, 7(51): 28482-28493.

[21] Ikhe A B, Kale A B, Jeong J, et al. Perfluorinated polysiloxane hybridized with graphene oxide for corrosion inhibition of AZ31 magnesium alloy[J]. Corrosion Siencec, 2016, 109: 238-245.

[22] 陈宁宁 , 王燕华 , 钟莲 , 等 . 石墨烯 / 硬脂酸超疏水复合膜层的防腐性能 [J]. 材料研究学报 , 2017, 31(10): 751-754.

[23] Yan Z, Jingwei T, Jing Z, et al. Thin nacre-biomimetic coating with super anticorrosion performance[J]. ACS Nano, 2018, 12(10): 10189-10200.

[24] Li B F, Yin X G, Xue S Y, et al. Facile fabrication of graphene oxide and MOF-based superhydrophobic dual-layer coatings for enhanced corrosion protection on magnesium alloy[J]. Applied Surface Science.2022, 580: 152305.

[25] Zong Q, Wang L, Sun W, et al. Active deposition of bis (8-hydroxyquinoline) magnesium coating for enhanced corrosion resistance of AZ91D alloy[J]. Corrosion Science, 2014, 89: 127-136.

[26] Fan F, Zhou C, Wang X, et al. Layer-by-layer assembly of a self-healing anticorrosion coating on magnesium alloys[J]. ACS Applied Materials & Interfaces, 2015, 7(49): 27271-27278.

[27] Chen C, He Y ,Xiao G, et al. Synergistic effect of graphene oxide@phosphate intercalated hydrotalcite for improved anti-corrosion and self-healable protection of waterborne epoxy coating in salt environments[J]. Journal of Materials Chemistry C, 2019, 7(8): 2318-2326.

[28] Soliman H, Qian J Y, Tang S, et al. Hydroxyquinoline/nano-graphene oxide composite coating of self-healing functionality on treated Mg alloys AZ31[J]. Surface and Coatings Technology, 2020, 385: 125395.

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备注/Memo

收稿日期: 2022-09-21 修回日期: 2023-01-15 作者简介: 韩文静( 1985 —),女,硕士,副教授, email : hanwenjing19850122@126.com 基金项目: 2021 年度河南省高等学校重点科研项目资助计划( 21A880017 )?/html>

更新日期/Last Update: 2023-04-14