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首页> 外文期刊>Journal of Ceramic Science and Technology >Biocompatibility of Hydroxyapatite-Alumina and Hydroxyapatite-Zirconia Composites including Commercial Inert Glass (CIG) as a Ternary Component
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Biocompatibility of Hydroxyapatite-Alumina and Hydroxyapatite-Zirconia Composites including Commercial Inert Glass (CIG) as a Ternary Component

机译:含商用惰性玻璃(CIG)作为三元组分的羟基磷灰石-氧化铝和羟基磷灰石-氧化锆复合材料的生物相容性

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摘要

Hydroxyapatite (HA), chemical formula Ca-10(PO4)(6)(OH)(2), is a very popular bioceramic for orthopedic and dental applications. Although HA has excellent biocompatibility, its inferior mechanical properties make it unsuitable for load-bearing implant applications. Therefore, HA should be strengthened by a secondary phase to produce a composite that possesses robust mechanical properties. The aim of this study was to compare the microstructural and mechanical properties and biocompatibility of HA-Al2O3 and HA-ZrO2 composites with the addition of 5 and 10 wt% commercial inert glass (CIG) independently and to determine from the studied composites the one with the most suitable composition for biomedical applications. The powders were pressed and then, the pellets were sintered between 1000-1300 degrees C for four hours. The thermodynamic analyses of the samples were performed by means of DTA followed by the thermodynamic analysis program FactSage. Microstructural characterizations were carried out using SEM + EDS and XRD, while hardness and compression tests were performed to measure the mechanical properties. The results showed that the compressive strength and the microhardness of HA-Al2O3 composites increased with rising CIG content and increasing sintering temperature. On the other hand, for HA-ZrO2 composites, increasing CIG content caused an elevation in hardness and a decrease in compressive strength values at 1300 degrees C. The biocompatibility tests (in vitro and in vivo) were performed on those composites that possessed the highest physical and mechanical properties. In conclusion, the optimum CIG content was determined to improve the mechanical properties and biocompatibility of the composites. The mechanical properties and biocompatibility of HA-Al2O3 composites have been found to be lower than those of HA-ZrO2 composites. In this study, the ideal composite was selected as HA-ZrO2-5 wt% (HZC5) sintered at 1200 degrees C.
机译:羟基磷灰石(HA)的化学式为Ca-10(PO4)(6)(OH)(2),是一种非常流行的生物陶瓷,适用于整形外科和牙科应用。尽管HA具有出色的生物相容性,但其较差的机械性能使其不适用于承重的植入物应用。因此,HA应通过第二相进行强化,以生产出具有强大机械性能的复合材料。这项研究的目的是比较HA-Al2O3和HA-ZrO2复合材料分别添加5%和10 wt%的商用惰性玻璃(CIG)的微观结构和力学性能以及生物相容性,并从研究的复合物中确定一种最适合生物医学应用的组合物。压制粉末,然后将粒料在1000-1300℃之间烧结4小时。样品的热力学分析是通过DTA然后是热力学分析程序FactSage进行的。使用SEM + EDS和XRD进行了微观结构表征,同时进行了硬度和压缩测试以测量机械性能。结果表明,HA-Al2O3复合材料的压缩强度和显微硬度随CIG含量的增加和烧结温度的升高而增加。另一方面,对于HA-ZrO2复合材料,增加的CIG含量会导致1300℃的硬度升高和抗压强度值降低。对具有最高含量的那些复合材料进行了生物相容性测试(体外和体内)物理和机械性能。总之,确定了最佳的CIG含量可以改善复合材料的机械性能和生物相容性。已经发现,HA-Al2O3复合材料的机械性能和生物相容性低于HA-ZrO2复合材料的机械性能和生物相容性。在这项研究中,理想的复合材料被选为在1200摄氏度下烧结的HA-ZrO2-5​​ wt%(HZC5)。

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