The biocompatibility of HA thin films deposition on anodized titanium alloys
โ Scribed by Kang Lee; Han-Cheol Choe; Byung-Hoon Kim; Yeong-Mu Ko
- Publisher
- Elsevier Science
- Year
- 2010
- Tongue
- English
- Weight
- 729 KB
- Volume
- 205
- Category
- Article
- ISSN
- 0257-8972
No coin nor oath required. For personal study only.
โฆ Synopsis
Ti TiO 2 layer HA thin film deposition In vitro test A thin hydroxyapatite (HA) film was deposited on anodized titanium for the biocompatibility by RF sputtering method. The anodized titanium has improved its bioactivity further by the HA deposition on the anodized titanium surface. TiO 2 layer with 0.2 ~0.5 ฮผm diameter pore size was formed on the Ti surface by anodization. HA film deposited surface showed that the pore size and number decreased compared with non-HA deposited surface. The corrosion resistance of HA deposited/anodized Ti was higher than that of the non-treatment Ti alloy in Hank's solution, indicating better protective effect. From the results of cell culture using MTT assays, the best cell proliferation showed in HA deposited surface after anodization of Ti surfaces compared with another surface treatment.
๐ SIMILAR VOLUMES
The properties of the anodic oxide films formed on titanium and its implant alloys Ti-5Al-4V and Ti-6Al-4Fe are investigated in this paper. Anodic oxide films were prepared by electrochemical treatment in 3M sulphuric acid solution at 60 V for 1 min, followed by a thermal treatment consisting of hea
Auger depth profiling was used to determine the local film thickness of a thin anodic oxide grown on a polycrystalline Ti substrate. The oxide thickness was studied as a function of substrate crystallography and final growth voltage. These results were related to local photocurrent measurements obta
Abatraet-A photoelectrochemical investigation has been performed on thin TiO, films grown anodically in 0.5 M H,SO, solution at high growth rates. The shape of the photocurrent vs. potential curves under monochromatic irradiation (photocharacteristics) depends on the photon energy of the incident li