3 results listed
Abstract
Metals and their alloys used in the biomedical industry due to their high mechanical and good fatigue properties
[1]. It is well known that titanium (Ti) and its alloys are the most popular metallic materials used as implant [2]. Ti alloys
are classified into 3 main groups as microstructure. This are α type (e.g. pure Ti), α+β type (e.g. Ti6Al4V) and β type
(e.g. Ti–29Nb–13Ta–4.6Zr, described as TNTZ) alloys [3-4]. The major properties for a metallic biomaterial are no doubt
biocompatibility and corrosion resistance [5]. Farnoush et al. [6] found that bioglass which composed in HA/bioglass
coatings behaves as aide for sintering process as well as responsible for transformation of HA to β-TCP which is thought
to be more bioactive material due to ion exchange capability. Other findings of the study were that with addition of
bioglass both bonding strength [7] and corrosion resistance were increased. Also with bioglass coating higher oxide film
stability obtained in simulated body fluid. Another study was revealed that with bioglass addition and increased sintering
temperatures up to 700°C is more protective than pristine Ti6Al4V substrates in terms of corrosion resistance [8]. In this
study, bioglass (45S5) doped hydroxyapatite (Ca10(PO4)6(OH)2) coatings has been successfully synthesized by sol-gel
technique on different Ti alloys. The corrosion resistances of the coatings have been measured under in-vitro conditions
by a potentiostat/galvanostat. Potentiodynamic polarization scanning (PDS) tests were performed on the samples in the
Ringer’s solution (simulated body fluid, SBF) [9]. The surface morphologies of the coated sample on the different Ti
alloys are presented in Fig. 1 The PDS results of CP Ti, Ti6Al4V and TNTZ alloys in Ringer's solutions at 37°C were
shown in Fig. 2a–c. In addition, some important parameters calculated from the curves have been collected in Table
International Symposium on Light Alloys and Composite Materials
UHAKS
Mehmet Topuz
Burak Dikici
Serap Koç
Mitsuo Niinomi
Masaaki Nakai
Ti–29Nb–13Ta–4.6Zr (TNTZ) composed of non-toxic and non-allergenic Nb, Ta, and Zr alloying elements, has
been extensively investigated [1] as an alternative to the conventional metal based biomaterials. TNTZ must combine
both excellent mechanical biocompatibility, corrosion resistance, good cell-implant interactions and healing.
Microstructural features such as the grain diameter, secondary phases, residual stress, nature of the surface oxide film,
and lattice defects can play a major role in determining the physical response of the material that influence the
biocompatibility of TNTZ [1,2]. Severe plastic deformation (SPD) has been a proven technique for controlling the grain
size in ultrafine-grained (UFG) (<1000 nm) and/or nanograined (NG) (<100 nm) scale [3]. Furthermore, the influence of
ultrafine graining and nanograining on corrosion resistance differs among metallic materials [4,5]. Thorpe et al. [4]
reported that there is no differences in corrosion resistance in Ni-based metallic materials and pure Cu. On the other hand,
Rofagha et al.[5] reported lower corrosion resistance in nanocrystalline Ni-P compared to the conventional polycrystalline
Ni. Clearly, there is a strong connection between corrosion resistance and the microstructural features of metallic
materials. Moreover, UFG/NS materials exhibits higher cell attachments compared to their course grained (CG)
counterparts [6]. It is well known that high pressure torsion (HPT) is an effective processing for producing NG TNTZ
[7]. In this study, the microstructural evolution and its effect on electrochemical behaviour of solution treated TNTZ
(TNTZST) and aging treated TNTZ (TNTZAT) subjected to HPT processing were evaluated by electrochemical impedance
spectroscopy (EIS) measurements in simulated body fluid (SBF). While TNTZST exhibited a single β body centred cubic
(BCC) grain structure having a diameter of 40 µm, the microstructure of TNTZAT consisted of randomly distributed
needle-like α (HCP) precipitates in the equiaxed β grains having a diameter of 40 µm. The microstructure of TNTZAHPT
consists of NG elongated β grains with a 50 nm having subgrains of non-uniform morphologies resulting from distortion
by severe torsional deformation.
International Symposium on Light Alloys and Composite Materials
UHAKS
Hakan Yilmazer
Burak Dikici
Mitsuo Niinomi
Masaaki Nakai
β-type titanium alloys have been developed all over the world, which widely used in several biomedical applications
because of their good mechanical properties such as low Young’s modulus and corrosion resistance [1]. Niinomi et al.
has also developed a β-type Ti-29Nb-13Ta-4.6Zr, referred to as TNTZ, which is composed of non-toxic and non-allergic
elements such as Nb, Ta, and Zr, with low Young’s modulus [2]. It was also revealed that the cell viability on TNTZ is
much superior than that on Ti-6Al-4V ELI [2,3]. Young’s modulus of TNTZ subjected has been found to be around 60
GPa at the microstructure having single β (BCC) phase for solution treatment and cold rolling [4-5]. It is much more
closer to those (10-30 GPa) of bone than those (100 and 110 GPa) of commercial pure Ti and Ti-6Al-4V ELI.
International Symposium on Light Alloys and Composite Materials
UHAKS
Hakan Yilmazer
Mazin Abed
Mitsuo Niinomi
Masaaki Nakai
Huseyin Cimenoglu
Murat Baydogan