G. Suresh Kumar, K. Lalithambigai, Nguyễn Văn Minh, Mohd. Shkir, Mhejabeen Sayed
• Mg alloys are promising for implants but corrode rapidly in the body. • HAp coatings improve corrosion resistance and bioactivity. • Key coating methods include sol-gel, hydrothermal, and PEO. • Hybrid and doped HAp coatings offer multifunctional benefits. • Smart coatings and 3D-printed scaffolds show future clinical potential. Biodegradable magnesium (Mg) alloys have received increased attention as temporary medical implants due to their mechanical properties and density, similar to natural bone. However, the fast corrosion of Mg alloys in a physiological condition limits their wide applications. Hence, hydroxyapatite (HAp) coatings on Mg alloys have attracted much attention to address this corrosion issue and enhance the surface functionalities. In this paper, we present a review of HAp coating strategies on Mg alloys, including the sol-gel method, hydrothermal treatment, biomimetic coating, electrochemical deposition, electrophoretic deposition, and plasma electrolytic oxidation technique, and their recent progress to enhance the surface characteristics of Mg alloys. This review focused on aspects of coating morphology, hybrid formulations, and how they influence corrosion behavior as well as in vitro and in vivo performance. Moreover, we have discussed the future prospects of HAp-coating strategies, emphasizing on multifunctional, hybrid, and smart coatings for next-generation implant materials.