Effect of nano-hydroxyapatite reinforcement in mechanically alloyed NiTi composites for biomedical implant
Equi-atomic NiTi alloy composites reinforced with 0, 2, 4 and 6vol.% nano-hydroxyapatite (HA) were successfully synthesized using pressureless sintering. Pure Ni and Ti elements were ball milled for 10h in order to produce a mechanically alloyed equi-atomic NiTi alloy (MA-NiTi). Mechanically alloyed...
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Veröffentlicht in: | Materials Science & Engineering C 2016-11, Vol.68, p.30-36 |
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Sprache: | eng |
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Zusammenfassung: | Equi-atomic NiTi alloy composites reinforced with 0, 2, 4 and 6vol.% nano-hydroxyapatite (HA) were successfully synthesized using pressureless sintering. Pure Ni and Ti elements were ball milled for 10h in order to produce a mechanically alloyed equi-atomic NiTi alloy (MA-NiTi). Mechanically alloyed NiTi and HA powders were blended, compacted and then sintered for 3h at 1325K. The sintered density varied inversely with volume percent of HA reinforcement. The X-Ray diffraction spectra and SEM images showed the formation of multiple phases like NiTi, NiTi2, Ni3Ti, and Ni4Ti3. The back scattered-SEM image analysis confirmed the presence of Ni-rich and Ti-rich phases with increasing HA content. The 6vol.% HA reinforced composite showed Ni3Ti as the major phase having the highest hardness value which can be attributed to the presence of relatively harder phases along with higher HA content as a reinforcement. The composite of MA-NiTi with 2vol.% HA manifested the most desirable results in the form of better sintering density mainly due to the minute decomposition of NiTi into other phases. Therefore, the 2vol.% reinforced MA-NiTi composite can be exploited as a novel material for manufacturing biomedical implants.
•NiTi-HA composites were synthesized using powder metallurgy route.•New phases such as NiTi2, Ni3Ti and Ni4Ti3 were observed for sintered composites.•Mechanical properties enhanced with the increasing content of HA and new phases.•No martensitic transformation was observed for all composites by DSC analysis.•2vol.% HA composite is a novel candidate for biomedical implants. |
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ISSN: | 0928-4931 1873-0191 |
DOI: | 10.1016/j.msec.2016.05.092 |