Biodegradable magnesium alloys with Zn, Yb, Ca and Sr additions are potential materials with increased corrosion resistance in physiological fluids that ensure a controlled resorption process in the human body. This article presents the influence of the use of a high cooling rate on the corrosion behavior of Mg60Zn20Yb15.7Ca2.6Sr1.7 alloy proposed for medical applications. The microstructure of the alloy in a form of high-pressure die-casted plates was presented using scanning electron microscopy in the backscattered electrons (BSEs) mode with energy-dispersive X-ray spectrometer (EDX) qualitative analysis of chemical composition. The crystallization mechanism and thermal properties were described on the basis of differential scannin...
Magnesium alloys have raised immense interest to many researchers because of its evolution as a new ...
Magnesium alloys have shown great potential for applications as both structural and biomedical mater...
Inert but biocompatible metals and biodegradable polymers are currently used as orthopedic fixations...
Biodegradable magnesium alloys with Zn, Yb, Ca and Sr additions are potential materials with increas...
AbstractThis study was carried out to investigate the effect of solidification cooling rate on the c...
Magnesium (Mg) and its alloys are emerging as a new class of load-bearing implants for orthopaedic a...
An as-cast Mg–1Zn–1Ca alloy has been soundly characterized to be used as a biodegradable material in...
Magnesium alloys are promising candidates for biomedical applications because of their advantageous ...
© 2015 Elsevier B.V. All rights reserved. The high corrosion rate of magnesium (Mg) and Mg-alloys pr...
Pure magnesium possesses similar mechanical properties compared to natural human bone, which helps t...
Magnesium alloys have recently attracted the attention as a new biodegradable material. In this stu...
Magnesium (Mg) and Mg-alloys are being considered as implantable biometals. Despite their excellent ...
The feasibility of a Mg-Zn-Zr alloy for biomedical applications was studied through microstructure c...
The successful applications of magnesium- based alloys as biodegradable orthopedic implants are main...
AbstractThe microstructure, mechanical property, and in vitro biocorrosion behavior of as-cast singl...
Magnesium alloys have raised immense interest to many researchers because of its evolution as a new ...
Magnesium alloys have shown great potential for applications as both structural and biomedical mater...
Inert but biocompatible metals and biodegradable polymers are currently used as orthopedic fixations...
Biodegradable magnesium alloys with Zn, Yb, Ca and Sr additions are potential materials with increas...
AbstractThis study was carried out to investigate the effect of solidification cooling rate on the c...
Magnesium (Mg) and its alloys are emerging as a new class of load-bearing implants for orthopaedic a...
An as-cast Mg–1Zn–1Ca alloy has been soundly characterized to be used as a biodegradable material in...
Magnesium alloys are promising candidates for biomedical applications because of their advantageous ...
© 2015 Elsevier B.V. All rights reserved. The high corrosion rate of magnesium (Mg) and Mg-alloys pr...
Pure magnesium possesses similar mechanical properties compared to natural human bone, which helps t...
Magnesium alloys have recently attracted the attention as a new biodegradable material. In this stu...
Magnesium (Mg) and Mg-alloys are being considered as implantable biometals. Despite their excellent ...
The feasibility of a Mg-Zn-Zr alloy for biomedical applications was studied through microstructure c...
The successful applications of magnesium- based alloys as biodegradable orthopedic implants are main...
AbstractThe microstructure, mechanical property, and in vitro biocorrosion behavior of as-cast singl...
Magnesium alloys have raised immense interest to many researchers because of its evolution as a new ...
Magnesium alloys have shown great potential for applications as both structural and biomedical mater...
Inert but biocompatible metals and biodegradable polymers are currently used as orthopedic fixations...