Login / Signup

Laser-Deposited Beta Type Ti-42Nb Alloy with Anisotropic Mechanical Properties for Pioneering Biomedical Implants with a Very Low Elastic Modulus.

Felipe Arias-GonzalezAlejandra Rodríguez-ContrerasMiquel Punset FusteJosé María ManeroÓscar BarroMónica Fernández-AriasFernando LusquiñosFrancisco Javier GilJuan Pou
Published in: Materials (Basel, Switzerland) (2022)
Present commercial titanium alloy implants have an elastic modulus higher than 100 GPa, whereas that of the cortical bone is much smaller (17-28 GPa). This elastic modulus mismatch produces a stress shielding effect and the resorption of the bone surrounding the implant. In the present work, a <100> fiber texture is developed in β type Ti-42Nb (wt%) alloy ingots generated by laser-directed energy deposition (LDED) in order to achieve anisotropic mechanical properties. In addition, we demonstrate that laser-deposited β type Ti-42Nb alloy ingots with an intense <100> fiber texture exhibit a very low elastic modulus in the building direction (E z < 50 GPa) and high yield (σ 0.2z > 700 MPa) and tensile (UTS z > 700 MPa) strengths. Laser-deposited Ti-42Nb alloy enhances the osteoinductive effect, promoting the adhesion, proliferation, and spreading of human osteoblast-like cells. Hence, we propose that laser-deposited β type Ti-42Nb alloy is a potentially promising candidate for the manufacturing of pioneering biomedical implants with a very low elastic modulus that can suppress stress shielding.
Keyphrases
  • soft tissue
  • high speed
  • endothelial cells
  • bone mineral density
  • computed tomography
  • body composition
  • high resolution
  • pseudomonas aeruginosa
  • induced pluripotent stem cells