Porous biomaterials that simultaneously mimic the topological, mechanical, and mass transport properties of bone are in great demand but are rarely found in the literature. In this study, we rationally designed and additively manufactured (AM) porous metallic biomaterials based on four different types of triply periodic minimal surfaces (TPMS) that mimic the properties of bone to an unprecedented level of multi-physics detail. Sixteen different types of porous biomaterials were rationally designed and fabricated using selective laser melting (SLM) from a titanium alloy (Ti-6Al-4V). The topology, quasi-static mechanical properties, fatigue resistance, and permeability of the developed biomaterials were then characterized. In terms of topolog...
The rational design of bone-substituting biomaterials is relatively complex because they should meet...
Triply Periodic Minimal Surfaces (TPMS) have earned great popularity in porous meta- biomaterials by...
One of the critical issues in orthopaedic regenerative medicine is the design of bone scaffolds and ...
Porous biomaterials that simultaneously mimic the topological, mechanical, and mass transport proper...
Porous biomaterials that simultaneously mimic the topological, mechanical, and mass transport proper...
Additively manufactured (AM, =3D printed) porous metallic biomaterials with topologically ordered un...
Additive manufacturing (AM) techniques enable fabrication of bone-mimicking meta-biomaterials with u...
Additive manufacturing (AM) techniques enable fabrication of bone-mimicking meta-biomaterials with u...
Additively manufactured (AM) micro-architected biodegradable metals offer a unique combination of pr...
Additively manufactured (AM) porous metallic biomaterials, in general, and AM porous titanium, in pa...
For the treatment of large bony defects, no perfect solution has been yet found, partially due to th...
We overview recent findings achieved in the field of model-driven development of additively manufact...
Additively manufactured (AM) topologically ordered porous metallic biomaterials with the proper biod...
Selective laser melting is a promising additive manufacturing technology for manufacturing porous me...
PublishedJournal ArticleResearch Support, Non-U.S. Gov'tTriply periodic minimal surface (TPMS) struc...
The rational design of bone-substituting biomaterials is relatively complex because they should meet...
Triply Periodic Minimal Surfaces (TPMS) have earned great popularity in porous meta- biomaterials by...
One of the critical issues in orthopaedic regenerative medicine is the design of bone scaffolds and ...
Porous biomaterials that simultaneously mimic the topological, mechanical, and mass transport proper...
Porous biomaterials that simultaneously mimic the topological, mechanical, and mass transport proper...
Additively manufactured (AM, =3D printed) porous metallic biomaterials with topologically ordered un...
Additive manufacturing (AM) techniques enable fabrication of bone-mimicking meta-biomaterials with u...
Additive manufacturing (AM) techniques enable fabrication of bone-mimicking meta-biomaterials with u...
Additively manufactured (AM) micro-architected biodegradable metals offer a unique combination of pr...
Additively manufactured (AM) porous metallic biomaterials, in general, and AM porous titanium, in pa...
For the treatment of large bony defects, no perfect solution has been yet found, partially due to th...
We overview recent findings achieved in the field of model-driven development of additively manufact...
Additively manufactured (AM) topologically ordered porous metallic biomaterials with the proper biod...
Selective laser melting is a promising additive manufacturing technology for manufacturing porous me...
PublishedJournal ArticleResearch Support, Non-U.S. Gov'tTriply periodic minimal surface (TPMS) struc...
The rational design of bone-substituting biomaterials is relatively complex because they should meet...
Triply Periodic Minimal Surfaces (TPMS) have earned great popularity in porous meta- biomaterials by...
One of the critical issues in orthopaedic regenerative medicine is the design of bone scaffolds and ...