Replication processing using NaCl spaceholders offers the possibility to produce cellular structures for a range of Mg alloys. Four Mg alloys (AZ63, M2, ZM21 and MZX211) were processed into open cellular structures with a pore size near 500 mm and a porosity of 75% using an optimized NaCl leaching procedure. The production method was found to be robust and yielded samples of acceptable strength and stiffness. Their dissolution rate (by H2 release in simulated body fluid) and mechanical properties (by cyclic compression) were measured. For all 4 alloys the initial mechanical properties mimic those of cancellous bone; however, the dissolution rate is too high for direct use in the human body, leading to excessive hydrogen evolution and overly ...
Magnesium and its alloys have several competitive advantages due to their low density and the highes...
Medical implants are devices that are often placed inside the human body to provide support to organ...
Biodegradable magnesium (Mg) alloys exhibit great potential for use as temporary structures in tissu...
Replication processing using NaCl spaceholders offers the possibility to produce cellular structures...
Cellular metals are a relatively new class of engineering materials that can be fabricated with eith...
Biomaterials have been used for more than a century in the human body to improve body functions and ...
The combination of high strength, light weight, and natural biodegradability renders magnesium (Mg) ...
Magnesium (Mg) and its alloys offer potential as a new class of degradable metallic orthopaedic biom...
Magnesium (Mg) and its alloys were initially investigated as resorbable orthopaedic biomaterials mor...
Medical application materials must meet multiple requirements, and the designed implant must mimic t...
In the last six decades, it has been made a great advancement in the field of engineering material e...
The potential of Magnesium (Mg)-based temporary biodegradable metallic implants relies most heavily ...
Biodegradable alloys and especially magnesium-based alloys are considered by many researchers as mat...
In fracture management with open reduction and internal fixation with metallic implant, secondary pr...
In this study, several biodegradable Mg alloys (Mg5Zn, Mg5Zn0.3Ca, Mg5Zn0.15Ca, and Mg5Zn0.15Ca0.15Z...
Magnesium and its alloys have several competitive advantages due to their low density and the highes...
Medical implants are devices that are often placed inside the human body to provide support to organ...
Biodegradable magnesium (Mg) alloys exhibit great potential for use as temporary structures in tissu...
Replication processing using NaCl spaceholders offers the possibility to produce cellular structures...
Cellular metals are a relatively new class of engineering materials that can be fabricated with eith...
Biomaterials have been used for more than a century in the human body to improve body functions and ...
The combination of high strength, light weight, and natural biodegradability renders magnesium (Mg) ...
Magnesium (Mg) and its alloys offer potential as a new class of degradable metallic orthopaedic biom...
Magnesium (Mg) and its alloys were initially investigated as resorbable orthopaedic biomaterials mor...
Medical application materials must meet multiple requirements, and the designed implant must mimic t...
In the last six decades, it has been made a great advancement in the field of engineering material e...
The potential of Magnesium (Mg)-based temporary biodegradable metallic implants relies most heavily ...
Biodegradable alloys and especially magnesium-based alloys are considered by many researchers as mat...
In fracture management with open reduction and internal fixation with metallic implant, secondary pr...
In this study, several biodegradable Mg alloys (Mg5Zn, Mg5Zn0.3Ca, Mg5Zn0.15Ca, and Mg5Zn0.15Ca0.15Z...
Magnesium and its alloys have several competitive advantages due to their low density and the highes...
Medical implants are devices that are often placed inside the human body to provide support to organ...
Biodegradable magnesium (Mg) alloys exhibit great potential for use as temporary structures in tissu...