Literature DB >> 35523650

Effect of silicon content on the microstructure evolution, mechanical properties, and biocompatibility of β-type TiNbZrTa alloys fabricated by laser powder bed fusion.

X Luo1, C Yang2, R Y Li3, H Wang3, H Z Lu4, T Song4, H W Ma4, D D Li5, A Gebert6, Y Y Li7.   

Abstract

Beta-type titanium alloys are excellent candidates for biomedical applications because of their very low elastic modulus, excellent corrosion resistance, and biocompatibility. However, many traditional β-type titanium alloys exhibit low yield strength. In this study, a small amount of Si (3 and 5 at.%) was added to a Ti-35Nb-7Zr-5Ta (wt%, TNZT) biomedical alloy prepared via laser powder bed fusion (LPBF) to increase its yield strength. The Si addition resulted in a significant increase in the compression yield strength of the alloy (from 802 to 1282 MPa). Meanwhile, the elastic moduli of the TNZT alloys (48.7-60.6 GPa) with 3 and 5 at.% Si were much lower than that of the Ti-6Al-4 V alloy (110 GPa), which is used extensively in clinical applications. The microstructural analyses indicated that the ultrahigh-strength of the TNZT alloy containing Si was due to the presence of ultrafine (Ti, Nb, Zr)5Si3 (S1) grains in the β-Ti matrix. In addition, thin shell-shaped S1 and (Ti, Nb, Zr)2Si (S2) grains precipitated along the columnar β-Ti grain boundaries in the TNZT alloys containing 3 and 5 at.% Si, respectively. Moreover, the introduction of Si to the TNZT alloy significantly refined the grains, weakened the cubic texture, decreased surface roughness, and improved Vickers hardness. The ultrahigh strength of the Si-containing TNZT alloys was due to grain boundary strengthening and precipitation strengthening. In addition, in vitro studies with MC3T3-E1 cells revealed that the cytocompatibilities of the LPBF-fabricated TNZT and Si-containing TNZT alloys were equivalent and were better than that of the LPBF-fabricated Ti-6Al-4 V alloy. In particular, the TNZT alloy with 3 at.% Si showed the best elastic modulus (48.7 ± 1.0 GPa), yield strength (1151 ± 17 MPa), and cell biological response among all the alloys investigated in this study, and hence was found to be a suitable candidate for application in load-bearing bone implants.
Copyright © 2021 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Biocompatibility; Laser powder bed fusion; Mechanical properties; Microstructure; β-Type titanium alloys

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Year:  2021        PMID: 35523650     DOI: 10.1016/j.msec.2021.112625

Source DB:  PubMed          Journal:  Biomater Adv        ISSN: 2772-9508


  1 in total

Review 1.  Effect of Alloying Elements on the Compressive Mechanical Properties of Biomedical Titanium Alloys: A Systematic Review.

Authors:  Syed Faraz Jawed; Chirag Dhirajlal Rabadia; Muhammad Ahmed Khan; Saad Jawaid Khan
Journal:  ACS Omega       Date:  2022-08-15
  1 in total

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