In this work, the role that manganese plays in determining the structure and performance of sintered biodegradable porous Fe-Mn alloys is described. Powder metallurgy processing was employed to produce a series of biodegradable porous Fe-xMn (x = 20, 30, and 35 wt %) alloys suitable for bone scaffold applications. Increasing manganese content increased the porosity volume in the sintered alloys and influenced the ensuing properties of the metal. The Fe-35Mn alloy possessed optimum properties for orthopedic application. X-ray diffraction analysis and magnetic characterization confirmed the predominance of the antiferromagnetic austenitic phase and ensured the magnetic resonance imaging (MRI) compatibility of this alloy. The porous Fe-35Mn al...
Biodegradable metals have been extensively studied due to their potential use as temporary biomedica...
Degradable iron (Fe) based materials have been widely investigated for fracture fixation to overcome...
In this research work, the nanostructured Fe-Mn (BM0), Fe-Mn-Cu (BM1), Fe-Mn-W (BM2), and Fe-Mn-Co (...
In this work, the role that manganese plays in determining the structure and performance of sintered...
Powder sintering at 1200 °C for 180 min was used to produce Fe–Mn based alloys with tensi...
Powder sintering at 1200 °C for 180 min was used to produce Fe-Mn based alloys with tensile properti...
Porous degradable metal is a promising material for hard-tissue scaffold application. It offers bett...
Selective laser melting (SLM) can produce complex hierarchical architectures paving the way for high...
The authors evaluated the biodegradability and biocompatibility of an alloy of iron and manganese in...
In this work, porous FeMn(-xAg) alloys are fabricated through powder metallurgy methods. The effects...
Successfully designing biodegradable metallic orthopedic implants that support bone remodeling after...
Degradable, transient orthopaedic implants have been proposed for years, with the aim to replace per...
The current trend in development of new metallic materials for certain types of implants is turning ...
At present, FeMn-based degradable alloys prepared by direct sintering generally face the problems of...
Porous Fe-30Mn6Si1Pd (wt.%) alloys were prepared by a simple press and sinter process from ball-mill...
Biodegradable metals have been extensively studied due to their potential use as temporary biomedica...
Degradable iron (Fe) based materials have been widely investigated for fracture fixation to overcome...
In this research work, the nanostructured Fe-Mn (BM0), Fe-Mn-Cu (BM1), Fe-Mn-W (BM2), and Fe-Mn-Co (...
In this work, the role that manganese plays in determining the structure and performance of sintered...
Powder sintering at 1200 °C for 180 min was used to produce Fe–Mn based alloys with tensi...
Powder sintering at 1200 °C for 180 min was used to produce Fe-Mn based alloys with tensile properti...
Porous degradable metal is a promising material for hard-tissue scaffold application. It offers bett...
Selective laser melting (SLM) can produce complex hierarchical architectures paving the way for high...
The authors evaluated the biodegradability and biocompatibility of an alloy of iron and manganese in...
In this work, porous FeMn(-xAg) alloys are fabricated through powder metallurgy methods. The effects...
Successfully designing biodegradable metallic orthopedic implants that support bone remodeling after...
Degradable, transient orthopaedic implants have been proposed for years, with the aim to replace per...
The current trend in development of new metallic materials for certain types of implants is turning ...
At present, FeMn-based degradable alloys prepared by direct sintering generally face the problems of...
Porous Fe-30Mn6Si1Pd (wt.%) alloys were prepared by a simple press and sinter process from ball-mill...
Biodegradable metals have been extensively studied due to their potential use as temporary biomedica...
Degradable iron (Fe) based materials have been widely investigated for fracture fixation to overcome...
In this research work, the nanostructured Fe-Mn (BM0), Fe-Mn-Cu (BM1), Fe-Mn-W (BM2), and Fe-Mn-Co (...