Mg-Zn alloys have attracted great attention as implant biomaterials due to their biodegradability and biomechanical compatibility. However, their clinical application was limited due to the too rapid degradation. In the study, hydroxyapatite (HA) was incorporated into Mg-Zn alloy via selective laser melting. Results showed that the degradation rate slowed down due to the decrease of grain size and the formation of protective layer of bone-like apatite. Moreover, the grain size continually decreased with increasing HA content, which was attributed to the heterogeneous nucleation and increased number of nucleation particles in the process of solidification. At the same time, the amount of bone-like apatite increased because HA could provide f...
Medical application materials must meet multiple requirements, and the designed implant must mimic t...
Zinc (Zn) is a potential bioresorbable metal material (BMM) with a degradation rate lower than magne...
The wide application of magnesium alloys as biodegradable implant materials is limited because of th...
This work aims to investigate the mechanical performance and biodegradation behaviour of magnesium-z...
Magnesium (Mg) has drawn increasing attention as a tissue engineering material. However, there have ...
Hydroxyapatite (HA) is the most important bioceramic material for hard tissue replacement in human b...
Magnesium-based alloys have attracted significant attention for biomedical applications due to its b...
In the present work, Zn-HA composites were developed by powder metallurgy route targeted for bone im...
The too fast degradation of magnesium (Mg) alloys is a major impediment hindering their orthopedic a...
The demand for short-term degradable implant in bone fixation applications is growing steadily due t...
Mg and its alloy have shown great potential for orthopaedic and cardiovascular applications due to t...
Biodegradable alloys and especially magnesium-based alloys are considered by many researchers as mat...
The aim of this paper is to show that laser treated magnesium-based alloys can be a potential candid...
429-434In recent years, magnesium alloys have attracted great attention as degradable implant mater...
Zinc is a non-ferrous metal with potential application in orthopaedic implant materials. However, it...
Medical application materials must meet multiple requirements, and the designed implant must mimic t...
Zinc (Zn) is a potential bioresorbable metal material (BMM) with a degradation rate lower than magne...
The wide application of magnesium alloys as biodegradable implant materials is limited because of th...
This work aims to investigate the mechanical performance and biodegradation behaviour of magnesium-z...
Magnesium (Mg) has drawn increasing attention as a tissue engineering material. However, there have ...
Hydroxyapatite (HA) is the most important bioceramic material for hard tissue replacement in human b...
Magnesium-based alloys have attracted significant attention for biomedical applications due to its b...
In the present work, Zn-HA composites were developed by powder metallurgy route targeted for bone im...
The too fast degradation of magnesium (Mg) alloys is a major impediment hindering their orthopedic a...
The demand for short-term degradable implant in bone fixation applications is growing steadily due t...
Mg and its alloy have shown great potential for orthopaedic and cardiovascular applications due to t...
Biodegradable alloys and especially magnesium-based alloys are considered by many researchers as mat...
The aim of this paper is to show that laser treated magnesium-based alloys can be a potential candid...
429-434In recent years, magnesium alloys have attracted great attention as degradable implant mater...
Zinc is a non-ferrous metal with potential application in orthopaedic implant materials. However, it...
Medical application materials must meet multiple requirements, and the designed implant must mimic t...
Zinc (Zn) is a potential bioresorbable metal material (BMM) with a degradation rate lower than magne...
The wide application of magnesium alloys as biodegradable implant materials is limited because of th...