Engineering a biocompatible microscale surface topography for promoting the hard tissue implant’s mechanical properties and cell response
2025
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Authors
Laketić, Slađana
Momčilović, Miloš
Ciganović, Jovan
Kojić, Vesna
Zagorac, Dejan
Cvijović-Alagić, Ivana
Article (Published version)
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This study evaluated methods to improve the long-term durability and performance of the metallic hard-tissue implant materials under physiological conditions, using the β-type Ti-45Nb (mass%) alloy as an example. The focus was on enhancing surface characteristics, mechanical behavior, and biocompatibility of the bio-metallic alloy through a combination of severe plastic deformation and surface modification techniques. High-pressure torsion (HPT), as a severe plastic deformation procedure, was used to refine the alloy’s microstructure, and attained results showed that a significant reduction of the grain size was achieved without inducing phase transformations. Subsequent laser surface treatment was employed to modify the surface chemistry and topography of the investigated alloy, and surface analysis that followed revealed increased roughness and the formation of a passive oxide layer. These microstructural and surface changes led to improved mechanical properties and enhanced bioactiv...ity of the Ti-45Nb alloy in simulated physiological environments. Overall, the combined use of plastic deformation and laser treatment significantly enhanced the performance of Ti-45Nb alloy for biomedical applications.
Keywords:
metallic biomaterials / microstructural refinement / laser surface modification / surface characteristics / echanical properties / cytotoxicity / biocompatibilitySource:
Journal of Innovative Materials in Extreme Conditions, 2025, 6, 2, 47-58Funding / projects:
- Ministry of Science, Technological Development and Innovation of the Republic of Serbia, institutional funding - 200017 (University of Belgrade, Institute of Nuclear Sciences 'Vinča', Belgrade-Vinča) (RS-MESTD-inst-2020-200017)
Institution/Community
VinčaTY - JOUR AU - Laketić, Slađana AU - Momčilović, Miloš AU - Ciganović, Jovan AU - Kojić, Vesna AU - Zagorac, Dejan AU - Cvijović-Alagić, Ivana PY - 2025 UR - https://vinar.vin.bg.ac.rs/handle/123456789/16112 AB - This study evaluated methods to improve the long-term durability and performance of the metallic hard-tissue implant materials under physiological conditions, using the β-type Ti-45Nb (mass%) alloy as an example. The focus was on enhancing surface characteristics, mechanical behavior, and biocompatibility of the bio-metallic alloy through a combination of severe plastic deformation and surface modification techniques. High-pressure torsion (HPT), as a severe plastic deformation procedure, was used to refine the alloy’s microstructure, and attained results showed that a significant reduction of the grain size was achieved without inducing phase transformations. Subsequent laser surface treatment was employed to modify the surface chemistry and topography of the investigated alloy, and surface analysis that followed revealed increased roughness and the formation of a passive oxide layer. These microstructural and surface changes led to improved mechanical properties and enhanced bioactivity of the Ti-45Nb alloy in simulated physiological environments. Overall, the combined use of plastic deformation and laser treatment significantly enhanced the performance of Ti-45Nb alloy for biomedical applications. T2 - Journal of Innovative Materials in Extreme Conditions T1 - Engineering a biocompatible microscale surface topography for promoting the hard tissue implant’s mechanical properties and cell response VL - 6 IS - 2 SP - 47 EP - 58 UR - https://hdl.handle.net/21.15107/rcub_vinar_16112 ER -
@article{
author = "Laketić, Slađana and Momčilović, Miloš and Ciganović, Jovan and Kojić, Vesna and Zagorac, Dejan and Cvijović-Alagić, Ivana",
year = "2025",
abstract = "This study evaluated methods to improve the long-term durability and performance of the metallic hard-tissue implant materials under physiological conditions, using the β-type Ti-45Nb (mass%) alloy as an example. The focus was on enhancing surface characteristics, mechanical behavior, and biocompatibility of the bio-metallic alloy through a combination of severe plastic deformation and surface modification techniques. High-pressure torsion (HPT), as a severe plastic deformation procedure, was used to refine the alloy’s microstructure, and attained results showed that a significant reduction of the grain size was achieved without inducing phase transformations. Subsequent laser surface treatment was employed to modify the surface chemistry and topography of the investigated alloy, and surface analysis that followed revealed increased roughness and the formation of a passive oxide layer. These microstructural and surface changes led to improved mechanical properties and enhanced bioactivity of the Ti-45Nb alloy in simulated physiological environments. Overall, the combined use of plastic deformation and laser treatment significantly enhanced the performance of Ti-45Nb alloy for biomedical applications.",
journal = "Journal of Innovative Materials in Extreme Conditions",
title = "Engineering a biocompatible microscale surface topography for promoting the hard tissue implant’s mechanical properties and cell response",
volume = "6",
number = "2",
pages = "47-58",
url = "https://hdl.handle.net/21.15107/rcub_vinar_16112"
}
Laketić, S., Momčilović, M., Ciganović, J., Kojić, V., Zagorac, D.,& Cvijović-Alagić, I.. (2025). Engineering a biocompatible microscale surface topography for promoting the hard tissue implant’s mechanical properties and cell response. in Journal of Innovative Materials in Extreme Conditions, 6(2), 47-58. https://hdl.handle.net/21.15107/rcub_vinar_16112
Laketić S, Momčilović M, Ciganović J, Kojić V, Zagorac D, Cvijović-Alagić I. Engineering a biocompatible microscale surface topography for promoting the hard tissue implant’s mechanical properties and cell response. in Journal of Innovative Materials in Extreme Conditions. 2025;6(2):47-58. https://hdl.handle.net/21.15107/rcub_vinar_16112 .
Laketić, Slađana, Momčilović, Miloš, Ciganović, Jovan, Kojić, Vesna, Zagorac, Dejan, Cvijović-Alagić, Ivana, "Engineering a biocompatible microscale surface topography for promoting the hard tissue implant’s mechanical properties and cell response" in Journal of Innovative Materials in Extreme Conditions, 6, no. 2 (2025):47-58, https://hdl.handle.net/21.15107/rcub_vinar_16112 .


