Materials Research Express · 2017 · 16 citations · 28 references
Crystal StructureMagnetic PropertiesHydroxyapatite/titanium CoatingEngineeringMechanical EngineeringSurface TechnologyCorrosionBioceramicRf-magnetron SputteringThin Film ProcessingCorrosion ResistanceProtective CoatingMaterials ScienceMaterials EngineeringPowder MetallurgyCeramic MaterialDepth-graded Multilayer CoatingMicrostructurePowder SynthesisAfm NanoindentationDeposition ParametersSurface ScienceMaterials CharacterizationApplied PhysicsSurface EngineeringThin FilmsSurface ProcessingMaterial Preparation
Functionally graded HA/Ti coatings were deposited on silicon and Ti6Al4V substrate by radio-frequency (RF) magnetron sputtering. The effect of RF-power, negative bias and heat-treatment on the microstructure, mechanical and electrochemical properties of the coatings were characterized by SEM, XRD, FTIR, AFM Nanoindentation and electrochemical workstation. The obtained results showed that the as-deposited HA/Ti coatings were characteristic of amorphous structure, which transformed into a crystal structure after heat-treatment, and reformed O–H peak. The content of crystallization was increasing with the increase of negative bias. A dense, homogenous, smooth and featured surface, and columnar cross-section structure was observed in SEM observation. AFM results showed that the surface roughness became higher after heat-treatment, and increased with increasing RF-power. The mechanical test indicated that the coating had a higher nanohardness (9.1 GPa) in the case of −100 V and 250 W than that of Ti6Al4V substrate, and a critical load as high as 17 ± 3.5 N. The electrochemical test confirmed the HA/Ti coating served as a stable protecting barrier in improving the corrosion resistance, which the corrosion current density was 1.3% of Ti6Al4V, but it was significantly influenced by RF-power and negative bias. The contact angle test demonstrated that all the coatings exhibited favorable hydrophilic properties, and it decreased by 20–25% compared to that untreated samples. Thus all results indicated that magnetron sputtering is a promising way for fabricating a better biocompatible ceramic coating by adjusting deposition parameters and post-deposition heat treatments.
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Plasma sprayed coatings of hydroxylapatite
K. de Groot, R. G. T. Geesink, Carsten Klein et al. · Journal of Biomedical Materials Research · 1987 · 1.1K citations
Materials Engineering, Materials Science, Thermal Spray Coating +11
Structural analysis of hydroxyapatite coatings on titanium
Paul Ducheyne, W Van Raemdonck, J.C. Heughebaert et al. · Biomaterials · 1986 · 422 citations