| Literature DB >> 28756282 |
Wang Xiaopeng1, Kong Fantao1, Han Biqing2, Chen Yuyong1.
Abstract
Ti-Nb-Sn-hydroxyapatite (HA) composites were prepared by mechanical alloying for different times (unmilled, 4, 8 and 12h), followed by pulse current activated sintering. The effects of the milling time on the electrochemical corrosion resistance and bioactivity of the sintered Ti-35Nb-2.5Sn-15HA composites were investigated. Potentiodynamic polarization test results indicated that the sintered Ti-35Nb-2.5Sn-15HA composites exhibited higher corrosion resistance with increasing milling time. The corrosion potential and current of the Ti-35Nb-2.5Sn-15HA composite sintered by 12h milled powders were - 0.261V and 0.18μA/cm2, respectively, and this sintered composite showed a stable and wide passivation region. The hemolysis rate of the sintered Ti-35Nb-2.5Sn-15HA composites reduced with increasing milling time and the lowest hemolytic rate of the composites was 0.87%. In addition, the in vitro cell culture results indicated that the composite sintered by 12h milled powders had good biocompatibility. These results indicate the significant potential of Ti-35Nb-2.5Sn/xHA composites for biomedical implant applications.Entities:
Keywords: Bioactivity; Electrochemical corrosion; Milling time; Ti-Nb-Sn/HA composites
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Year: 2017 PMID: 28756282 DOI: 10.1016/j.jmbbm.2017.07.025
Source DB: PubMed Journal: J Mech Behav Biomed Mater ISSN: 1878-0180