Department of Materials Engineering Indian Institute of Science, Bangalore 560012, India.
Department of Materials Engineering Indian Institute of Science, Bangalore 560012, India.
J Mech Behav Biomed Mater. 2018 Feb;78:124-133. doi: 10.1016/j.jmbbm.2017.11.014. Epub 2017 Nov 11.
Metastable β Ti alloys are the new emerging class of biomaterial for load bearing orthopedic applications. However, these alloys in the single β phase microstructure have insufficient strength for use in load bearing applications. It is imperative to strengthen these alloys by carefully designed thermo-mechanical processing routes that typically involve aging treatment. In this investigation two newly designed Sn based β Ti alloys of composition Ti-32Nb-(2, 4) Sn are evaluated. The effects of Sn content on the mechanical properties and biological performance of these alloys processed through designed thermo-mechanical processing route are investigated. The increase in the Sn content led to a reduction in the elastic modulus of the alloy. An increase in the Sn content increased the aspect ratio of the α precipitates, which led to a significant strengthening in the alloy while keeping the elastic modulus low. In addition, the corrosion behavior of the alloy was evaluated in simulated body fluid. The Sn containing β alloys have an excellent corrosion resistance as desired for an implant material. The corrosion resistance improved with an increase in Sn content. These alloys were also observed to have excellent cytocompatibility as they not only supported the attachment and proliferation of human mesenchymal stem cells but also their osteogenic differentiation in vitro. The combination of high strength, low elastic modulus, superior corrosion resistance and biocompatibility underscores the promise of Sn containing β Ti alloys for use in orthopedic applications.
亚稳β Ti 合金是一种新兴的医用植入物生物材料,可用于承重骨科应用。然而,这些具有单一β相微观结构的合金的强度不足以用于承重应用。通过精心设计的热机械加工路线来强化这些合金是当务之急,这些路线通常涉及时效处理。本研究评估了两种新设计的 Sn 基β Ti 合金,其成分分别为 Ti-32Nb-(2,4)Sn。通过设计的热机械加工路线处理后,研究了 Sn 含量对这些合金力学性能和生物学性能的影响。Sn 含量的增加导致合金弹性模量降低。Sn 含量的增加增加了α析出物的纵横比,从而在保持低弹性模量的同时显著提高了合金的强度。此外,还评估了合金在模拟体液中的腐蚀行为。含 Sn 的β 合金具有优异的耐腐蚀性,符合植入材料的要求。随着 Sn 含量的增加,耐腐蚀性提高。这些合金还具有良好的细胞相容性,因为它们不仅支持人骨髓间充质干细胞的附着和增殖,而且支持其体外成骨分化。高强度、低弹性模量、优异的耐腐蚀性和生物相容性的结合,突显了含 Sn 的β Ti 合金在骨科应用中的应用前景。