The further development of future Magnesium based biodegradable implants must consider not only the freedom of design, but also comprise implant volume reduction, as both aspects are crucial for the development of higher functionalised implants, such as plate systems or scaffold grafts in bone replacement therapy. As conventional manufacturing methods such as turning and milling are often accompanied by limitations concerning implant design and functionality, the process of laser powder bed fusion (LPBF) specifically for Magnesium alloys was recently introduced. In addition, the control of the degradation rate remains a key aspect regarding biodegradable implants. Recent studies focusing on the degradation behaviour of additively manufactur...
The combination of high strength, light weight, and natural biodegradability renders magnesium (Mg) ...
Magnesium is an attractive metallic material for temporary implant applications. Magnesium readily d...
WE43, a magnesium alloy containing yttrium and neodymium as main alloying elements, has become a wel...
Additive manufacturing (AM) is an important technology that led to a high evolution in the manufactu...
AbstractBiodegradable implants are in the focus of recent research approaches in the medical enginee...
Medical application materials must meet multiple requirements, and the designed implant must mimic t...
The aim of this study was to investigate the differences in the in vivo degradation behaviour of mag...
Additive manufacturing (AM) of magnesium alloys for biomedical applications is of growing interest i...
implant Magnesium-Calcium (MgCa) alloys have shown very promising potential to make biodegradable me...
Degradable implant material for bone remodeling that corresponds to the physiological stability of b...
The aim of this paper is to show that laser treated magnesium-based alloys can be a potential candid...
When skeletal fractures are too extensive for fixation with plates and screws, autografts are the mo...
Magnesium, a light-weight engineering metal, is a potential biomaterial for orthopaedic biodegradabl...
The combination of high strength, light weight, and natural biodegradability renders magnesium (Mg) ...
Magnesium is an attractive metallic material for temporary implant applications. Magnesium readily d...
WE43, a magnesium alloy containing yttrium and neodymium as main alloying elements, has become a wel...
Additive manufacturing (AM) is an important technology that led to a high evolution in the manufactu...
AbstractBiodegradable implants are in the focus of recent research approaches in the medical enginee...
Medical application materials must meet multiple requirements, and the designed implant must mimic t...
The aim of this study was to investigate the differences in the in vivo degradation behaviour of mag...
Additive manufacturing (AM) of magnesium alloys for biomedical applications is of growing interest i...
implant Magnesium-Calcium (MgCa) alloys have shown very promising potential to make biodegradable me...
Degradable implant material for bone remodeling that corresponds to the physiological stability of b...
The aim of this paper is to show that laser treated magnesium-based alloys can be a potential candid...
When skeletal fractures are too extensive for fixation with plates and screws, autografts are the mo...
Magnesium, a light-weight engineering metal, is a potential biomaterial for orthopaedic biodegradabl...
The combination of high strength, light weight, and natural biodegradability renders magnesium (Mg) ...
Magnesium is an attractive metallic material for temporary implant applications. Magnesium readily d...
WE43, a magnesium alloy containing yttrium and neodymium as main alloying elements, has become a wel...