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Article

Design of Novel Non-Cytotoxic Ti-15Nb-xTa Alloys for Orthopedic Implants

by
Yasmin Monteiro Schumacher
1,
Carlos Roberto Grandini
2,
Gerson Santos de Almeida
3,
Willian Fernando Zambuzzi
3 and
Pedro Akira Bazaglia Kuroda
1,*
1
Instituto Latino-Americano de Ciências da Vida e da Natureza, UNILA—Universidade Federal de Integração Latino-Americana, Foz do Iguaçu 85870-650, PR, Brazil
2
Laboratório de Anelasticidade e Biomateriais, UNESP—Universidade Estadual Paulista, Bauru 17033-360, SP, Brazil
3
Laboratory of Bioassays and Cellular Dynamics, Department of Chemical & Biochemistry, Institute of Biosciences, UNESP—Universidade Estadual Paulista, Botucatu 18618-689, SP, Brazil
*
Author to whom correspondence should be addressed.
Metals 2025, 15(11), 1201; https://doi.org/10.3390/met15111201
Submission received: 16 September 2025 / Revised: 25 October 2025 / Accepted: 26 October 2025 / Published: 28 October 2025
(This article belongs to the Special Issue Advances in Metallic Materials for Biomedical Applications)

Abstract

The objective of this study was to develop novel alloys of the Ti-15Nb-xTa system (x = 0, 10, 20, and 30 wt.%) and to evaluate the effect of tantalum addition on the structure, microstructure, hardness, and elastic modulus for biomedical applications. The ingots were produced using an arc melting furnace under a controlled argon atmosphere. Chemical composition analyses were performed using energy-dispersive spectroscopy (EDS) to determine the alloying element fractions and to conduct chemical mapping. The Thermo-Calc software (https://thermocalc.com/, 4 September 2024) was employed to predict the influence of Ta on the phase transformation temperatures. Structural and microstructural characterizations were performed using X-ray diffraction (XRD) and scanning electron microscopy (SEM). XRD patterns enabled the identification of the phases, the relative volume fractions, and the lattice parameters of the unit cells. As mechanical properties, Vickers microhardness and elastic modulus were measured. The results revealed that increasing Ta content decreased the β-transus temperature but increased the melting temperature of the alloys. Structural and microstructural characterizations indicated that the Ti-15Nb alloy consisted of α′ + α″ phases, Ti-15Nb-10Ta of α″ + β phases, Ti-15Nb-20Ta of α″ + β + ω phases, and Ti-15Nb-30Ta of metastable β phase. Hardness and elastic modulus results exhibited similar behavior: the alloy with the highest fraction of the α″ phase (Ti-15Nb-10Ta) displayed the lowest hardness and elastic modulus, whereas the alloy containing the ω phase (Ti-15Nb-20Ta) presented significantly higher values. Among the studied alloys, Ti-15Nb-10Ta stands out due to its low elastic modulus (57 GPa). In vitro cellular assays demonstrated that Ti-15Nb-Ta alloys promote osteoblast proliferation while exhibiting no cytotoxicity.
Keywords: arc melting; Ti alloys; elastic modulus; biocompatibility arc melting; Ti alloys; elastic modulus; biocompatibility
Graphical Abstract

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MDPI and ACS Style

Schumacher, Y.M.; Grandini, C.R.; de Almeida, G.S.; Zambuzzi, W.F.; Kuroda, P.A.B. Design of Novel Non-Cytotoxic Ti-15Nb-xTa Alloys for Orthopedic Implants. Metals 2025, 15, 1201. https://doi.org/10.3390/met15111201

AMA Style

Schumacher YM, Grandini CR, de Almeida GS, Zambuzzi WF, Kuroda PAB. Design of Novel Non-Cytotoxic Ti-15Nb-xTa Alloys for Orthopedic Implants. Metals. 2025; 15(11):1201. https://doi.org/10.3390/met15111201

Chicago/Turabian Style

Schumacher, Yasmin Monteiro, Carlos Roberto Grandini, Gerson Santos de Almeida, Willian Fernando Zambuzzi, and Pedro Akira Bazaglia Kuroda. 2025. "Design of Novel Non-Cytotoxic Ti-15Nb-xTa Alloys for Orthopedic Implants" Metals 15, no. 11: 1201. https://doi.org/10.3390/met15111201

APA Style

Schumacher, Y. M., Grandini, C. R., de Almeida, G. S., Zambuzzi, W. F., & Kuroda, P. A. B. (2025). Design of Novel Non-Cytotoxic Ti-15Nb-xTa Alloys for Orthopedic Implants. Metals, 15(11), 1201. https://doi.org/10.3390/met15111201

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