Research Progress of Superhydrophobic Polymer Composite Coatings for os Magnesium Alloys
Source: By:Wensheng Fu
DOI: https://doi.org/10.30564/jmmr.v3i1.1753
Abstract:Magnesium (Mg) alloy is the lightest metal material found because of its excellent physical and mechanical properties, specific strength, biocompatibility and biomechanical compatibility, therefore, it has very promising development prospects in aerospace, automobile manufacturing, and biodegradable materials. However, due to the relatively chemical properties of magnesium alloys, poor corrosion resistance, fast degradation rate, and poor wear resistance, they have been greatly restricted in practical applications. Therefore, anti-corrosion measures of magnesium alloys are particularly important. The manufacture of hydrophobic surfaces is a very effective method of anti-corrosion. The surface of super-hydrophobic polymer composites (i.e., thin coatings) is constructed on the surface of magnesium alloy materials to enhance their corrosion resistance and wear resistance, and the effect of its antiseptic measures is very impressive.
References:[1] Cui, L.-Y., et al.. In vitro corrosion resistance of a layer-by-layer assembled DNA coating on magnesium alloy. Applied Surface Science, 2018. 457: 49-58. [2] Wang, W., et al.. Magnesium alloy covered stent for treatment of a lateral aneurysm model in rabbit common carotid artery: An in vivo study. Scientific reports, 2016. 6: 37401. [3] Argarate, N., et al.. Biodegradable Bi-layered coating on polymeric orthopaedic implants for controlled release of drugs. Materials Letters, 2014. 132: 193-195. [4] Kirkland, N., et al.. A survey of bio-corrosion rates of magnesium alloys. Corrosion science, 2010. 52 (2): 287-291. [5] Li, L.-Y., et al.. In vitro corrosion of magnesium alloy AZ31—a synergetic influence of glucose and Tris. Frontiers of Materials Science, 2018. 12 (2): 184-197. [6] Jung, H.-D., et al.. Polyetheretherketone / magnesium composite coated coated with hydroxyapatite for enhanced in vitro bio-corrosion resistance and biocompatibility. Materials Letters, 2014. 116: 20-22. [7] Jaber, J.A., J.B. Schlenoff. Recent developments in the properties and applications of polyelectrolyte multilayers. Current opinion in colloid & interface science, 2006. 11 (6): 324-329. [8] Wang, J., et al.. Construction of superhydrophobic hydromagnesite films on the Mg alloy. Materials Chemistry and Physics, 2011. 129 (1-2): 154-160. [9] Yin, B., et al.. Preparation and properties of super-hydrophobic coating on magnesium alloy. Applied surface science, 2010. 257 (5): 1666-1671. [10] Wang, Y., et al.. Super-hydrophobic surface on pure magnesium substrate by wet chemical method. Applied Surface Science, 2010. 256 (12): 3837-3840. [11] Liu, Y., et al.. Biomimetic hydrophobic surface fabricated by chemical etching method from hierarchically structured magnesium alloy substrate. Applied Surface Science, 2013. 280: 845-849. [12] Wang, L., et al.. An environment-friendly fabrication of superhydrophobic surfaces on steel and magnesium alloy. Materials Letters, 2016. 171: 297-299. [13] Zhang, F., et al.. Fabrication of the superhydrophobic surface on magnesium alloy and its corrosion resistance. Journal of Materials Science & Technology, 2015. 31 (11): 1139-1143. [14] Zheng, T., et al.. Formation of a hydrophobic and corrosion resistant coating on magnesium alloy via a one-step hydrothermal method. Journal of colloid and interface science, 2017. 505: 87-95. [15] Liu, Y., et al.. A electro-deposition process for fabrication of biomimetic super-hydrophobic surface and its corrosion resistance on magnesium alloy. Electrochimica Acta, 2014. 125: 395-403. [16] Zhang, X., et al.. Polyelectrolyte multilayer as matrix for electrochemical deposition of gold clusters: toward super-hydrophobic surface. Journal of the American Chemical Society, 2004. 126 (10): 3064-3065. [17] Zhang, Y., T. Lin, Influence of duty cycle on properties of the superhydrophobic coating on an anodized magnesium alloy fabricated by pulse electrodeposition. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2019. 568: 43-50. [18] Cui, X.-j., et al.. Fabrication and corrosion resistance of a hydrophobic micro-arc oxidation coating on AZ31 Mg alloy. Corrosion Science, 2015. 90: 402-412. [19] Wang, S., et al.. Preparation of superhydrophobic silica film on Mg–Nd--Zn--Zr magnesium alloy with enhanced corrosion resistance by combining micro-arc oxidation and sol--gel method. Surface and Coatings Technology, 2012. 213: 192-201. [20] Zhang, F., et al.. Self-healing mechanisms in smart protective coatings: A review. Corrosion Science, 2018. [21] Li, D.-W., et al.. Large-scale fabrication of durable and robust super-hydrophobic spray coatings with excellent repairable and anti-corrosion performance. Chemical Engineering Journal, 2019. 367: 169-179. [22] Eduok, U., Z. Xu, J. Szpunar, Fabricating protective silica / PMDS composite films for Mg alloy: Correlating bulk silica reinforcement with barrier performance. Journal of Non-Crystalline Solids, 2018. 485: 47- 56. [23] Jia, S., et al.. Texturing commercial epoxy with hierarchical and porous structure for robust superhydrophobic coatings. Applied Surface Science, 2019. 466: 84-91. [24] Cai, C., et al.. Superhydrophobic surface fabricated by spraying hydrophobic R974 nanoparticles and the drag reduction in water. Surface and Coatings Technology, 2016. 307: 366-373. [25] Huang, J.-j., et al.. Preparation and property of coating on degradable Mg implant. Chinese Journal of Nonferrous Metals, 2007. 17 (9): 1465. [26] Zhao, Y., et al.. Corrosion resistance and antibacterial properties of polysiloxane modified layer-by-layer assembled self-healing coating on magnesium alloy. Journal of colloid and interface science, 2018. 526: 43-50. [27] Kannan, M.B., S. Liyanaarachchi, Hybrid coating on a magnesium alloy for minimizing the localized degradation for load-bearing biodegradable mini-implant applications. Materials Chemistry and Physics, 2013. 142 (1): 350-354. [28] Agarwal, S., et al.. Biodegradable magnesium alloys for orthopaedic applications: A review on corrosion, biocompatibility and surface modifications. Materials Science and Engineering: C, 2016. 68: 948-963. [29] Tomihata, K., M. Suzuki, Y. Ikada, The pH dependence of monofilament sutures on hydrolytic degradation. Journal of Biomedical Materials Research: An Official Journal of The Society for Biomaterials, The Japanese Society for Biomaterials, and The Australian Society for Biomaterials and the Korean Society for Biomaterials, 2001. 58 (5): 511-518. [30] Mashtalyar, D.V., K.V. Nadaraia, S.V. Gnedenkov. Multifunctional polymer-containing coatings on magnesium alloys. In MATEC Web of Conferences. 2017. EDP Sciences. [31] Gnedenkov, S., et al.. Composite fluoropolymer coatings on the MA8 magnesium alloy surface. Corrosion Science, 2016. 111: 175-185. [32] Wu, C., et al.. Fabrication of ZIF-8 @ SiO2 micro / nano hierarchical superhydrophobic surface on AZ31 magnesium alloy with impressive corrosion resistance and abrasion resistance. ACS applied materials & interfaces, 2017. 9 (12): 11106-11115. [33] Zhang, Q., H. Zhang. Corrosion resistance and mechanism of micro-nano structure super-hydrophobic surface prepared by laser etching combined with coating process. Anti-Corrosion Methods and Materials, 2019. [34] Xie, J., et al.. Robust and anti-corrosive PDMS / SiO2 superhydrophobic coatings fabricated on magnesium alloys with different-sized SiO2 nanoparticles. Applied Surface Science, 2018. 457: 870-880. [35] Zhou, H., et al.. Fabrication of ZnO / epoxy resin superhydrophobic coating on AZ31 Magnesium Alloy. Chemical Engineering Journal, 2019. [36] Mousa, HM, et al.. A multifunctional zinc oxide / poly (lactic acid) nanocomposite layer coated on magnesium alloys for controlled degradation and antibacterial function. ACS Biomaterials Science & Engineering, 2018. 4 (6): 2169- 2180. [37] Huang, L., et al.. Construction of TiO 2 / silane nanofilm on AZ31 magnesium alloy for controlled degradability and enhanced biocompatibility. Rare Metals: 1-13. [38] Li, J., et al.. Fabrication and corrosion behavior of TiO2 nanotubes on AZ91D magnesium alloy. Ceramics International, 2017. 43 (16): 13683-13688. [39] Devarakonda, SK, NSS Koka. Estimation of High Cycle Fatigue Life of AZ91E-Ni Coated Al 2 O 3 Particulate Nano Composites Using Reliability Based Approach. Journal of The Institution of Engineers (India): Series D, 2018. 99 (2): 201-208. [40] Huang, G.. Physical and electrochemical characteristics of low pressure cold sprayed aluminium composite coating on magnesium substrate. International Journal of Materials Research, 2018. 109 (11): 1010-1019.