Resumen
Titanium-based lattice structures have gained significant attention in biomedical engineering due to their potential to mimic bone-like behavior and improve implant performance. This study evaluates the performance of bio-inspired Ti64 TPMS Gyroyd and Stochastic lattice structures fabricated via Powder Bed Fusion-Laser Beam (PBF-LB), focusing on their in-vivo and ex-vivo mechanical and biological responses for biomedical applications. Utilizing an SLM 280 HL printer, samples exhibited notable geometric accuracy essential for mechanical integrity. The study highlights significant mechanical properties and geometric precision improvements achieved through chemical etching. Mechanical characterization revealed that the as-built Gyroid lattice had the highest elastic modulus (3.64 GPa) and yield strength (200.65 MPa), which improved post-etching (3.62 GPa and 219.35 MPa, respectively). The Stochastic lattice demonstrated lower yield strength values post-etching (169.81 MPa). In-vivo analyses in horse models, both structures demonstrated excellent biocompatibility and osseointegration with no adverse inflammatory responses. Ex-vivo push-out tests showed that the chemically etched Gyroid structure achieved the highest resistance to push-out force (1645.407 N) and most significant displacement (2.754 mm), indicating superior energy absorption (4920.425 mJ). These findings underscore the critical influence of microstructural design and surface treatments on implant functionality, offering novel insights into improving biomedical implant performance through lattice architecture and post-processing.
| Idioma original | Inglés |
|---|---|
| Número de artículo | 101450 |
| Publicación | Materials Today Bio |
| Volumen | 31 |
| DOI | |
| Estado | Publicada - abr 2025 |
Huella
Profundice en los temas de investigación de 'In-vivo and ex-vivo evaluation of bio-inspired structures fabricated via PBF-LB for biomedical applications'. En conjunto forman una huella única.Proyectos
- 1 Activo
-
Estudio del comportamiento biomecánico-osteointegración de implantes biomédicos procesados con tecnologías de manufactura avanzada
Araya Calvo, M. (Persona académico colaboradora institucional), Cubero Sesin, J. (Persona académico colaboradora institucional), Ureña Sandí, N. (Persona académico colaboradora institucional), Guillén Girón, T. (Persona académica coordinadora institucional), Estrada, R. (Persona académica colaboradora externo ), Vindas Bolaños, R. (Persona académica colaboradora externo ), Järvenpää, A. (Persona académica coordinadora institucional), Rautio, T. (Persona académica coordinadora institucional), Kawamura, Y. (Persona académica colaboradora externo ), Horita, Z. (Persona académica colaboradora externo ) & Corrales-Brenes, R. (Persona académica coordinadora institucional)
1/01/24 → 31/12/26
Proyecto: Proyectos Investigación Con fondos internos › Desarrollo Tecnológico
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