Institute of Materials Science, University of Silesia in Katowice, 41-500 Chorzów, Poland.
J Nanosci Nanotechnol. 2019 May 1;19(5):2799-2806. doi: 10.1166/jnn.2019.15846.
Titanium and titanium alloys are widely employed in biomedical applications but these alloys have unsatisfactory tribological properties because of their low hardness. Much better biomaterials for hard tissue replacement implants may be acquired by the preparation of titanium composites. Therefore, the connection of excellent biocompatibility and bioactivity of ZrO₂ ceramics with good properties of titanium is considered to be a promising approach for the fabrication of more perfect hard tissue replacement implants. This study describes the formation of Ti-ZrO₂ nanostructure composite biomaterial. Weighted amounts with the composition corresponding to Ti-ZrO₂ ( = 10, 30 and 50 wt.%) were high energy milled in the planetary ball mill PULVERISETTE 7 premium line by Fritch at 10, 30 and 50 h milling times. Structural evolution and morphological changes of the powder particles during mechanical alloying were studied using the X-ray diffractometer, scanning electron microscopy and transmission electron microscopy analysis. The Rietveld method was applied for the verification of the qualitative and quantitative phase composition of the studied material. The parameters of diffraction line profiles were determined by PRO-FIT Toraya procedure. The crystallite sizes and lattice distortions were analyzed by Williamson-Hall method. It was found that during high-energy milling a significant decrease of crystallite size to nanoscale is observed for -Ti and ZrO₂ phases. The images from scanning and transmission electron microscopes of the milled powders show that the size of the agglomerates of Ti nanocrystallites changes in a broad range and that ZrO₂ particles can be immersed in larger agglomerates or occur separately.
钛及钛合金广泛应用于生物医学领域,但由于其硬度低,这些合金的摩擦学性能并不令人满意。通过制备钛复合材料,可以获得更适合硬组织置换植入物的生物材料。因此,将氧化锆陶瓷的优异生物相容性和生物活性与钛的良好性能结合起来,被认为是制备更完美的硬组织置换植入物的一种很有前途的方法。本研究描述了 Ti-ZrO₂纳米结构复合材料生物材料的形成。将重量比为 Ti-ZrO₂(= 10、30 和 50wt.%)的粉末在行星球磨机 PULVERISETTE 7 premium line 中用 Fritch 在 10、30 和 50 小时的球磨时间下高能球磨。使用 X 射线衍射仪、扫描电子显微镜和透射电子显微镜分析研究了机械合金化过程中粉末颗粒的结构演变和形貌变化。Rietveld 法用于验证研究材料的定性和定量相组成。通过 PRO-FIT Toraya 程序确定衍射线轮廓的参数。通过 Williamson-Hall 法分析了晶粒尺寸和晶格畸变。结果发现,在高能球磨过程中,-Ti 和 ZrO₂相的晶粒尺寸显著减小到纳米级。球磨粉末的扫描和透射电子显微镜图像表明,Ti 纳米晶团聚体的尺寸在很宽的范围内变化,ZrO₂颗粒可以浸入较大的团聚体中或单独存在。