Magnesium alloys are considered to be the next generation of biomaterials because of their ability to degrade in the physiological environment. We elucidate here the impact of multiaxial forging of Mg-2Zn-2Gd alloy on grain refinement to sub-micron regime and relate the structure to mechanical properties and biological functionality. As-cast and annealed samples were multiaxial forged (MAF) for a total number of two passes with a true strain of ~2/pass. Considering that the microstructure governs the biological response of materials, we studied the constituents of the microstructure in conjunction with the mechanical behavior. The antimicrobial behavior in a Mg-2Zn-2Gd alloy with different grain size in the range of ~44 µm to ~710 nm was st...
As a new generation of medical degradable biomaterials, magnesium alloys were known as "revolutionar...
Biomaterials have been used for more than a century in the human body to improve body functions and ...
In this study, “smart” Mg-Ag alloys as antibacterial and biodegradable implant materials were prepar...
Magnesium alloys are considered to be the next generation of biomaterials because of their ability t...
Magnesium (Mg), a potential biodegradable material, has drawn wide attention in the bone reconstruct...
During the recent years, some Mg based alloys have extensively been considered as a new generation o...
Mg-1.5Y-1.2Zn-0.44Zr alloys were newly developed as degradable metallic biomaterials. A comprehensiv...
Being a biocompatible metal with similar mechanical properties as bones, magnesium bears both biodeg...
As biodegradable biomaterials, magnesium alloys have favorable physical, chemical and mechanical pro...
Abstract As promising biodegradable materials with nontoxic degradation products, magnesium (Mg) and...
In the last six decades, it has been made a great advancement in the field of engineering material e...
In this work, the effect of an ultrafine-grained (UFG) structure obtained by multiaxial deformation ...
The combination of high strength, light weight, and natural biodegradability renders magnesium (Mg) ...
Abstract Being a biocompatible metal with similar mechanical properties as bones, magnesium bears b...
Magnesium alloys have been widely explored as potential biomaterials, but several limitations to usi...
As a new generation of medical degradable biomaterials, magnesium alloys were known as "revolutionar...
Biomaterials have been used for more than a century in the human body to improve body functions and ...
In this study, “smart” Mg-Ag alloys as antibacterial and biodegradable implant materials were prepar...
Magnesium alloys are considered to be the next generation of biomaterials because of their ability t...
Magnesium (Mg), a potential biodegradable material, has drawn wide attention in the bone reconstruct...
During the recent years, some Mg based alloys have extensively been considered as a new generation o...
Mg-1.5Y-1.2Zn-0.44Zr alloys were newly developed as degradable metallic biomaterials. A comprehensiv...
Being a biocompatible metal with similar mechanical properties as bones, magnesium bears both biodeg...
As biodegradable biomaterials, magnesium alloys have favorable physical, chemical and mechanical pro...
Abstract As promising biodegradable materials with nontoxic degradation products, magnesium (Mg) and...
In the last six decades, it has been made a great advancement in the field of engineering material e...
In this work, the effect of an ultrafine-grained (UFG) structure obtained by multiaxial deformation ...
The combination of high strength, light weight, and natural biodegradability renders magnesium (Mg) ...
Abstract Being a biocompatible metal with similar mechanical properties as bones, magnesium bears b...
Magnesium alloys have been widely explored as potential biomaterials, but several limitations to usi...
As a new generation of medical degradable biomaterials, magnesium alloys were known as "revolutionar...
Biomaterials have been used for more than a century in the human body to improve body functions and ...
In this study, “smart” Mg-Ag alloys as antibacterial and biodegradable implant materials were prepar...