Additively manufactured (AM) topologically ordered porous metallic biomaterials with the proper biodegradation profile offer a unique combination of properties ideal for bone regeneration. These include a fully interconnected porous structure, bone-mimicking mechanical properties, and the possibility of fully regenerating bony defects. Most of such biomaterials are, however, based on magnesium and, thus, degrade too fast. Here, we present the first report on topologically ordered porous iron made by Direct Metal Printing (DMP). The topological design was based on a repetitive diamond unit cell. We conducted a comprehensive study on the in vitro biodegradation behavior (up to 28 days), electrochemical performance, time-dependent mechanical p...
Absorbable metals have been proposed as potential materials for hard tissue scaffolding to offer bot...
Bone replacement and osteosynthesis require materials which can at least temporarily bear high mecha...
Porous biomaterials that simultaneously mimic the topological, mechanical, and mass transport proper...
Additively manufactured (AM) topologically ordered porous metallic biomaterials with the proper biod...
Biodegradable metals have been extensively studied due to their potential use as temporary biomedica...
Partially due to the unavailability of ideal bone substitutes, the treatment of large bony defects r...
Additively manufacturing (AM) opens up the possibility for biodegradable metals to possess uniquely ...
Extrusion-based 3D printing followed by debinding and sintering is a powerful approach that allows f...
Additively manufactured lattices based on triply periodic minimal surfaces (TPMS) have attracted sig...
Topological design provides additively manufactured (AM) biodegradable porous metallic biomaterials ...
Additively manufactured (AM) micro-architected biodegradable metals offer a unique combination of pr...
Advanced additive manufacturing techniques have been recently used to tackle the two fundamental cha...
Absorbable metals have been proposed as potential materials for hard tissue scaffolding to offer bot...
Bone replacement and osteosynthesis require materials which can at least temporarily bear high mecha...
Porous biomaterials that simultaneously mimic the topological, mechanical, and mass transport proper...
Additively manufactured (AM) topologically ordered porous metallic biomaterials with the proper biod...
Biodegradable metals have been extensively studied due to their potential use as temporary biomedica...
Partially due to the unavailability of ideal bone substitutes, the treatment of large bony defects r...
Additively manufacturing (AM) opens up the possibility for biodegradable metals to possess uniquely ...
Extrusion-based 3D printing followed by debinding and sintering is a powerful approach that allows f...
Additively manufactured lattices based on triply periodic minimal surfaces (TPMS) have attracted sig...
Topological design provides additively manufactured (AM) biodegradable porous metallic biomaterials ...
Additively manufactured (AM) micro-architected biodegradable metals offer a unique combination of pr...
Advanced additive manufacturing techniques have been recently used to tackle the two fundamental cha...
Absorbable metals have been proposed as potential materials for hard tissue scaffolding to offer bot...
Bone replacement and osteosynthesis require materials which can at least temporarily bear high mecha...
Porous biomaterials that simultaneously mimic the topological, mechanical, and mass transport proper...