A porous Ti–18 at.%Nb–4 at.%Sn (hereafter, Ti–18Nb–4Sn) alloy was prepared by powder metallurgy. The porous structures were examined by scanning electron microscopy and the phase constituents were analysed by X-ray diffraction. Mechanical properties of the porous alloy were investigated using a compressive test. To enhance the bioactivity of the alloy surface, alkali-heat treatment was used to modify the surface. The bioactivity of the pre-treated alloy sample was investigated using a biomimetic process by soaking the sample into simulated body fluid (SBF). Results indicate that the elastic modulus and plateau stress of the porous Ti–18Nb–4Sn alloy decrease with decreasing relative density. The mechanical...
Advanced additive manufacturing techniques such as electron beam melting (EBM), can produce highly p...
Titanium alloys, due to their biocompatibility and low stiffness, are among the most studied of meta...
One of the most important factors for a successful performance of a load-bearing implant for hard ti...
A porous Ti–18 at.%Nb–4 at.%Sn (hereafter, Ti–18Nb–4Sn) alloy was prepared b...
A porous Ti-16Sn-4Nb alloy with an average pore size of 300 µm and porosity of 60 % was prepar...
Titanium and some of its alloys have received considerable attention for biomedical applications in ...
This work investigated the structure and properties relationship, surface modification, biocompatibi...
Biocompatible porous Ti-16Sn-4Nb alloys were synthesised in quest of a novel tissue engineering biom...
Abstract: In this study, antibacterial Ag element added to synthesis of porous Ti–20Nb–5Ag (wt%) all...
Titanium (Ti) and Ti-6 Aluminium-4 Vanadium alloys are the most common materials in implants composi...
Ti-based alloys are finding ever-increasing applications in biomaterials due to their excellent mech...
The improvement of bone ingrowth into prosthesis and enhancement of the combination of the range bet...
Porous titanium (Ti) and titanium alloys are promising scaffold biomaterials for bone tissue enginee...
Titanium and titanium alloys have been extensively studied for many applications in the area of bone...
This study focuses on the surface modification of a near beta-type Ti-27 wt.% Nb alloy by alkali-hea...
Advanced additive manufacturing techniques such as electron beam melting (EBM), can produce highly p...
Titanium alloys, due to their biocompatibility and low stiffness, are among the most studied of meta...
One of the most important factors for a successful performance of a load-bearing implant for hard ti...
A porous Ti–18 at.%Nb–4 at.%Sn (hereafter, Ti–18Nb–4Sn) alloy was prepared b...
A porous Ti-16Sn-4Nb alloy with an average pore size of 300 µm and porosity of 60 % was prepar...
Titanium and some of its alloys have received considerable attention for biomedical applications in ...
This work investigated the structure and properties relationship, surface modification, biocompatibi...
Biocompatible porous Ti-16Sn-4Nb alloys were synthesised in quest of a novel tissue engineering biom...
Abstract: In this study, antibacterial Ag element added to synthesis of porous Ti–20Nb–5Ag (wt%) all...
Titanium (Ti) and Ti-6 Aluminium-4 Vanadium alloys are the most common materials in implants composi...
Ti-based alloys are finding ever-increasing applications in biomaterials due to their excellent mech...
The improvement of bone ingrowth into prosthesis and enhancement of the combination of the range bet...
Porous titanium (Ti) and titanium alloys are promising scaffold biomaterials for bone tissue enginee...
Titanium and titanium alloys have been extensively studied for many applications in the area of bone...
This study focuses on the surface modification of a near beta-type Ti-27 wt.% Nb alloy by alkali-hea...
Advanced additive manufacturing techniques such as electron beam melting (EBM), can produce highly p...
Titanium alloys, due to their biocompatibility and low stiffness, are among the most studied of meta...
One of the most important factors for a successful performance of a load-bearing implant for hard ti...