Commercially pure titanium (cp-Ti) is a metallic biomaterial used in orthopedic and cardiovascular applications. Here, surface nanocrystalline cp-Ti produced by surface mechanical attrition treatment (SMAT) is shown to exhibit multifunctional properties for orthopedic and cardiovascular applications. Nanocrystallization simultaneously enhanced the stem cell response and fatigue resistance in simulated body fluid of cp-Ti collectively required for load bearing orthopedic applications. Stem cell attachment and proliferation was enhanced by 20% and number of cycles to failure increased by 15% after nanocrystallization. Nanocrystalline Ti was also found to be suitable for cardiovascular applications due to its improved hemocompatibility. A 40% ...
Nanoscale topography on various titanium surfaces has already been shown to improve vascular respons...
We have developed a chlorine based reactive ion etching process to yield randomly oriented anisotrop...
Extensive research for biomaterial development and implant technology has focused on the surface of ...
Nanostructured metals are a promising class of biomaterials for application in orthopedics to improv...
Patients who have had an implant of some form in their body not only have to face the challenges of ...
With an increasingly aging population, a significant challenge in implantology is the creation of bi...
International audienceBy means of surface mechanical attrition treatment (SMAT), a nanocrystalline s...
Bulk nanocrystalline Ti bars (Grade 4, phi 4 x 3000 mm3) were massively fabricated by equal channel ...
Titanium (Ti) and its alloys are mainly used for dental and orthopedic applications due to their exc...
Inflammation and implant loosening are major concerns when using titanium implants for hard tissue e...
Titanium has been used for dental and orthopaedic implants since decades due to its suitable surface...
Titanium and titanium alloys exhibit a unique combination of strength and biocompatibility, which en...
A β-Ta nanocrystalline coating was engineered onto a Ti-6Al-4V substrate using a double cathode glow...
The biological response to implant materials has been a topic of extensive research and discussion t...
With an increasingly active and aging population, a growing number of orthopedic procedures are perf...
Nanoscale topography on various titanium surfaces has already been shown to improve vascular respons...
We have developed a chlorine based reactive ion etching process to yield randomly oriented anisotrop...
Extensive research for biomaterial development and implant technology has focused on the surface of ...
Nanostructured metals are a promising class of biomaterials for application in orthopedics to improv...
Patients who have had an implant of some form in their body not only have to face the challenges of ...
With an increasingly aging population, a significant challenge in implantology is the creation of bi...
International audienceBy means of surface mechanical attrition treatment (SMAT), a nanocrystalline s...
Bulk nanocrystalline Ti bars (Grade 4, phi 4 x 3000 mm3) were massively fabricated by equal channel ...
Titanium (Ti) and its alloys are mainly used for dental and orthopedic applications due to their exc...
Inflammation and implant loosening are major concerns when using titanium implants for hard tissue e...
Titanium has been used for dental and orthopaedic implants since decades due to its suitable surface...
Titanium and titanium alloys exhibit a unique combination of strength and biocompatibility, which en...
A β-Ta nanocrystalline coating was engineered onto a Ti-6Al-4V substrate using a double cathode glow...
The biological response to implant materials has been a topic of extensive research and discussion t...
With an increasingly active and aging population, a growing number of orthopedic procedures are perf...
Nanoscale topography on various titanium surfaces has already been shown to improve vascular respons...
We have developed a chlorine based reactive ion etching process to yield randomly oriented anisotrop...
Extensive research for biomaterial development and implant technology has focused on the surface of ...