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Published November 9, 2020 | Version v1
Journal article

Compositional dependence of the apatite formation ability of Ti–Zr alloys designed for hard tissue reconstruction

  • 1. Graduate School of Life Science and Systems Engineering, Kyushu Institute of Technology (Japan)
  • 2. Kyushu Institute of Technology. Department of Materials Science and Engineering (Japan)
  • 3. Nagasaki University. Graduate School of Biomedical Sciences (Japan)

Description

Ti–Zr alloys are expected to be novel biomaterials with low stress shielding owing to their lower Young's moduli than pure Ti. The drawback of metallic biomaterials is that their bone-bonding abilities are relatively low. NaOH and heat treatments have been performed to provide Ti–50Zr with apatite-forming ability in the body environment, which is essential for bone bonding. However, the systematic compositional dependence of apatite formation has not been revealed. In the present study, NaOH treatment of Ti–Zr alloys with various compositions and bone-bonding abilities was assessed in vitro by apatite formation in simulated body fluid (SBF). The corrosion current density in NaOH aqueous solution and the amount of Na incorporated into the surface tended to decrease with increasing Zr content. The apatite-forming ability of the treated alloy significantly decreased when the Zr content was ≥60 atom%. This phenomenon is attributed to the (1) low OH content on the surface, (2) low Na incorporation into the treated alloy surface, which enhances apatite formation, and (3) low ability of P adsorption to the Ti–Zr alloy in SBF following Ca adsorption to trigger apatite nucleation. Although the adhesion of the titanate/zirconate layer formed on the surfaces to the substrates increased as Zr content increased, the adhesion between the apatite and the substrate was still low.

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Identifiers

Publishing Information

Journal Title
Journal of Materials Science. Materials in Medicine
Journal Volume
31
Journal Issue
11
Journal Page Range
vp.
ISSN
0957-4530
CODEN
JSMMEL

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Copyright (c) 2020 © Springer Science+Business Media, LLC, part of Springer Nature 2020