Yao Hai-Long, Yang Chao, Zhang Meng-Xian, Liu Dui, Hu Xiao-Zhen, Wang Hong-Tao
Jiangxi Province Engineering Research Center of Materials Surface Enhancing & Remanufacturing, School of Mechanical and Materials Engineering, Jiujiang University, Jiujiang 332005, China.
School of Civil Engineering and City Construction, Jiujiang University, Jiujiang 332005, China.
J Nanosci Nanotechnol. 2020 Apr 1;20(4):2442-2451. doi: 10.1166/jnn.2020.17213.
Two methods of TiO₂ addition were applied to prepare hydroxyapatite/TiO₂ (HA/TiO₂) composite, i.e., hydrolysis TiO₂ in HA powders (N-HA/TiO₂) and mixing commercial nano-sized HA and TiO₂ powder (C-HA/TiO₂). Effects of TiO₂ addition methods and sintering temperatures on phase, microstructure and microhardness were investigated for pressureless sintered HA/TiO₂ composites, and pure HA was investigated for comparison. Results show that TiO₂ from both hydrolysis and mixing commercial powder presented similar effects on phase structures and composition, and trended to chemically react with HA in the HA/TiO₂ composites at high sintering temperature. Weight loss for different composites was investigated by thermal analysis. Sintering behavior for two different composite was also discussed. The TiO₂ from hydrolysis can effectively enhance the TiO₂ distribution and densification for the N-HA/TiO₂ composites. Both two different composites showed typical grain growth and pore formation with the increase of sintering temperature. The N-HA/TiO₂ composite had a lower porosity, higher shrinkage and microhardness than that of C-HA/TiO₂ composite at sintering temperature from 700 °C to 1100 °C.
采用两种添加TiO₂的方法制备了羟基磷灰石/TiO₂(HA/TiO₂)复合材料,即在HA粉末中水解TiO₂(N-HA/TiO₂)和将商用纳米级HA与TiO₂粉末混合(C-HA/TiO₂)。研究了TiO₂添加方法和烧结温度对常压烧结HA/TiO₂复合材料的相、微观结构和显微硬度的影响,并对纯HA进行了研究以作比较。结果表明,水解法和混合商用粉末法引入的TiO₂对相结构和组成呈现相似的影响,且在高烧结温度下倾向于与HA/TiO₂复合材料中的HA发生化学反应。通过热分析研究了不同复合材料的失重情况。还讨论了两种不同复合材料的烧结行为。水解法引入的TiO₂能有效提高N-HA/TiO₂复合材料中TiO₂的分布和致密化程度。随着烧结温度的升高,两种不同的复合材料均表现出典型的晶粒生长和孔隙形成。在700℃至1100℃的烧结温度下,N-HA/TiO₂复合材料的孔隙率低于C-HA/TiO₂复合材料,收缩率和显微硬度则高于C-HA/TiO₂复合材料。