Magnesium alloys have great potential for developing orthopedic implants due to their biodegradability and mechanical properties, but the rapid corrosion rate of the currently-available alloys limits their clinical applications. To increase the corrosion resistance of the substrate, a protective ceramic coating is constructed by a micro-arc oxidation (MAO) process on ZK60 magnesium alloy. The porous ceramic coating is mainly composed of magnesium oxide and magnesium silicate, and the results from cell cultures show it can stimulate osteoblastic cell growth and proliferation. Moreover, gallic acid, a phenolic compound, was successfully introduced onto the MAO coating by grafting on hydrated oxide and chelating with magnesium ions. The gallic...
Magnesium alloys are next generation biodegradable implants for clinical applications. However, thei...
Magnesium (Mg) was originally developed as a degradable metallic biomaterial for orthopaedic applica...
Magnesium alloys are presently under investigation as promising biodegradable implant materials with...
Magnesium-based alloys are the most widely used materials for degradable metallic implants and have ...
Magnesium and its alloys have recently been used in the development of lightweight, biodegradable im...
The market for orthopedic implant alloys has seen significant growth in recent years, and efforts to...
AbstractThe rapid degradation of magnesium (Mg) based alloys has prevented their further use in orth...
Due to its good biocompatibility and compatible hardness with human bones, magnesium (Mg) alloy is c...
SummaryMagnesium (Mg) or its alloys have shown great potential as promising biocorrosive or biodegra...
Ceramic coatings containing hydroxyapatite (HA) were fabricated on a biodegradable Mg66Zn29Ca5 magne...
A newly-developed degradable Mg-1Ca (mass fraction%) alloy was modified with porous ceramic coatings...
Magnesium (Mg) alloys are being investigated as a biodegradable metallic biomaterial because of thei...
Ti6Al4V alloy commonly used in human body for load bearing prosthesis was coated by micro arc oxidat...
The biodegradable metals, including magnesium (Mg), are a convenient alternative to permanent metal...
Magnesium-based implants present several advantages for clinical applications, in particular due to ...
Magnesium alloys are next generation biodegradable implants for clinical applications. However, thei...
Magnesium (Mg) was originally developed as a degradable metallic biomaterial for orthopaedic applica...
Magnesium alloys are presently under investigation as promising biodegradable implant materials with...
Magnesium-based alloys are the most widely used materials for degradable metallic implants and have ...
Magnesium and its alloys have recently been used in the development of lightweight, biodegradable im...
The market for orthopedic implant alloys has seen significant growth in recent years, and efforts to...
AbstractThe rapid degradation of magnesium (Mg) based alloys has prevented their further use in orth...
Due to its good biocompatibility and compatible hardness with human bones, magnesium (Mg) alloy is c...
SummaryMagnesium (Mg) or its alloys have shown great potential as promising biocorrosive or biodegra...
Ceramic coatings containing hydroxyapatite (HA) were fabricated on a biodegradable Mg66Zn29Ca5 magne...
A newly-developed degradable Mg-1Ca (mass fraction%) alloy was modified with porous ceramic coatings...
Magnesium (Mg) alloys are being investigated as a biodegradable metallic biomaterial because of thei...
Ti6Al4V alloy commonly used in human body for load bearing prosthesis was coated by micro arc oxidat...
The biodegradable metals, including magnesium (Mg), are a convenient alternative to permanent metal...
Magnesium-based implants present several advantages for clinical applications, in particular due to ...
Magnesium alloys are next generation biodegradable implants for clinical applications. However, thei...
Magnesium (Mg) was originally developed as a degradable metallic biomaterial for orthopaedic applica...
Magnesium alloys are presently under investigation as promising biodegradable implant materials with...