Titanium and its alloys are excellent candidates for biomedical implant. However, they exhibit relatively poor tribological properties. In this study, a two-step treatment including surface mechanical attrition treatment (SMAT) combined with thermal oxidation process has been developed to improve the tribological properties and biocompatibility of Ti. Ti after two-step treatment shows excellent wear-resistance and biocompatibility among all Ti samples, which can be ascribed to the highest surface energy, well crystallinity of rutile layer on its surface. Overall, the two-step treatment is a prospective method to produce excellent biomedical Ti materials
Commercially pure titanium (cp-Ti) is a metallic biomaterial used in orthopedic and cardiovascular a...
International audienceTitanium and titanium-based alloys are widely used in various biomedical appli...
Title: Optimization of properties of Ti based alloys for biomedical and structural applications Auth...
Titanium and its alloys are excellent candidates for biomedical implant. However, they exhibit relat...
Surface mechanical attrition treatment (SMAT), a novel surface severe plastic deformation method, wa...
In the present work, the influence of thermal oxidation (TO) process on the micro-hardness and wear ...
Titanium and its alloys are employed for many biomedical applications. One of the reasons of this su...
Surface modification of metallic biomedical implants are often performed using chemical or mechanica...
Surface mechanical attrition treatment (SMAT) is recognized as a surface severe plastic deformation ...
The population aging together with increase of life expectancy forces the development of new prosthe...
Titanium and titanium alloys are widely used in biomedical devices and components, especially as har...
Titanium and its alloys are the most widespread materials employed in orthopaedic and dental surgery...
Ti is widely used as a material for orthopedic implants. As rapid and effective osseointegration is ...
To improve the biocompatibility and bioactivity of titanium and titanium alloys, a titanium oxide la...
In present study, the formation of bioactive anatase on bulk titanium (Ti) by hybrid surface mechani...
Commercially pure titanium (cp-Ti) is a metallic biomaterial used in orthopedic and cardiovascular a...
International audienceTitanium and titanium-based alloys are widely used in various biomedical appli...
Title: Optimization of properties of Ti based alloys for biomedical and structural applications Auth...
Titanium and its alloys are excellent candidates for biomedical implant. However, they exhibit relat...
Surface mechanical attrition treatment (SMAT), a novel surface severe plastic deformation method, wa...
In the present work, the influence of thermal oxidation (TO) process on the micro-hardness and wear ...
Titanium and its alloys are employed for many biomedical applications. One of the reasons of this su...
Surface modification of metallic biomedical implants are often performed using chemical or mechanica...
Surface mechanical attrition treatment (SMAT) is recognized as a surface severe plastic deformation ...
The population aging together with increase of life expectancy forces the development of new prosthe...
Titanium and titanium alloys are widely used in biomedical devices and components, especially as har...
Titanium and its alloys are the most widespread materials employed in orthopaedic and dental surgery...
Ti is widely used as a material for orthopedic implants. As rapid and effective osseointegration is ...
To improve the biocompatibility and bioactivity of titanium and titanium alloys, a titanium oxide la...
In present study, the formation of bioactive anatase on bulk titanium (Ti) by hybrid surface mechani...
Commercially pure titanium (cp-Ti) is a metallic biomaterial used in orthopedic and cardiovascular a...
International audienceTitanium and titanium-based alloys are widely used in various biomedical appli...
Title: Optimization of properties of Ti based alloys for biomedical and structural applications Auth...