Assessing Microstructural, Biomechanical, and Biocompatible Properties of TiNb Alloys for Potential Use as Load-Bearing Implants

Author:

Karakurt Eyyup Murat1,Huang Yan1ORCID,Cetin Yuksel2,Incesu Alper3ORCID,Demirtas Huseyin3,Kaya Mehmet4ORCID,Yildizhan Yasemin2ORCID,Tosun Merve2ORCID,Akbas Gulsah2

Affiliation:

1. Brunel Centre for Advanced Solidification Technology, Institute of Materials and Manufacturing, Brunel University London, Uxbridge, London UB8 3PH, UK

2. The Scientific and Technological Research Council of Turkey, Life Sciences Medical Biotechnology Unit, Marmara Research Centre, Kocaeli 41470, Turkey

3. TOBB Technical Sciences Vocational School, Karabuk University, Karabuk 78050, Turkey

4. Machinery and Metal Technologies Department, Corlu Vocational School, Tekirdag Namik Kemal University, Tekirdag 59830, Turkey

Abstract

Titanium-Niobium (TiNb) alloys are commonly employed in a number of implantable devices, yet concerns exist regarding their use in implantology owing to the biomechanical mismatch between the implant and the host tissue. Therefore, to balance the mechanical performance of the load-bearing implant with bone, TiNb alloys with differing porosities were fabricated by powder metallurgy combined with spacer material. Microstructures and phase constituents were characterized with energy dispersive spectroscopy (EDS), scanning electron microscopy (SEM), and X-ray diffraction (XRD). The mechanical properties were tested by uniaxial compression, and the corrosion performance was determined via a potentiodynamic polarization experiment. To evaluate a highly matched potential implant with the host, biocompatibilities such as cell viability and proliferation rate, fibronectin adsorption, plasmid-DNA interaction, and an SEM micrograph showing the cell morphology were examined in detail. The results showed that the alloys displayed open and closed pores with a uniform pore size and distribution, which allowed for cell adherence and other cellular activities. The alloys with low porosity displayed compressive strength between 618 MPa and 1295 MPa, while the alloys with high porosity showed significantly lower strength, ranging from 48 MPa to 331 MPa. The biological evaluation of the alloys demonstrated good cell attachment and proliferation rates.

Funder

The EPSRC Future LiME Hub

Publisher

MDPI AG

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