Mg and its alloys become natural biomaterials as the elemental Mg is found in the human body in abundance and their mechanical properties being akin to the natural bone as well as due to their inherent bioabsorbable/bioresorbable property. This paper discusses the development of new Mg alloys and their corrosion characteristics in detail. The latest advancements in coating of Mg alloys to control their degradation rate are also reviewed along with the future challenges that need to be addressed
Traditional metallic biomaterials for orthopedic implants require materials exhibiting excellent cor...
Magnesium (Mg) and its alloys have been widely explored as a potential biodegradable implant materia...
This chapter reviews our understanding of Mg corrosion and the measurement of Mg corrosion. There is...
Mg and its alloys become natural biomaterials as the elemental Mg is found in the human body in abun...
Researchers in this area of biodegradable magnesium (Mg) medical implant applications should underst...
The future of biomaterial design will rely on temporary implant materials that degrade while tissues...
The future of biomaterial design will rely on temporary implant materials that degrade while tissues...
The future of biomaterial design will rely on temporary implant materials that degrade while tissues...
The potential of magnesium alloys as bioabsorbable / biodegradable implants for biomedical applicati...
Abstract As promising biodegradable materials with nontoxic degradation products, magnesium (Mg) and...
Abstract: The biodegradable magnesium and its alloys are a focus of degradable biomaterials researc...
In the last six decades, it has been made a great advancement in the field of engineering material e...
In the last six decades, it has been made a great advancement in the field of engineering material e...
Magnesium (Mg) based alloys have been extensively considered for their use as biodegradable implant ...
Abstract Magnesium alloys attracted great attention as a new kind of degradable biomaterials. One re...
Traditional metallic biomaterials for orthopedic implants require materials exhibiting excellent cor...
Magnesium (Mg) and its alloys have been widely explored as a potential biodegradable implant materia...
This chapter reviews our understanding of Mg corrosion and the measurement of Mg corrosion. There is...
Mg and its alloys become natural biomaterials as the elemental Mg is found in the human body in abun...
Researchers in this area of biodegradable magnesium (Mg) medical implant applications should underst...
The future of biomaterial design will rely on temporary implant materials that degrade while tissues...
The future of biomaterial design will rely on temporary implant materials that degrade while tissues...
The future of biomaterial design will rely on temporary implant materials that degrade while tissues...
The potential of magnesium alloys as bioabsorbable / biodegradable implants for biomedical applicati...
Abstract As promising biodegradable materials with nontoxic degradation products, magnesium (Mg) and...
Abstract: The biodegradable magnesium and its alloys are a focus of degradable biomaterials researc...
In the last six decades, it has been made a great advancement in the field of engineering material e...
In the last six decades, it has been made a great advancement in the field of engineering material e...
Magnesium (Mg) based alloys have been extensively considered for their use as biodegradable implant ...
Abstract Magnesium alloys attracted great attention as a new kind of degradable biomaterials. One re...
Traditional metallic biomaterials for orthopedic implants require materials exhibiting excellent cor...
Magnesium (Mg) and its alloys have been widely explored as a potential biodegradable implant materia...
This chapter reviews our understanding of Mg corrosion and the measurement of Mg corrosion. There is...