增强人体植入物聚合物骨整合性能的研究

Dhurgham Majid Rasheed, D. A. Hamdi
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摘要

本研究采用高分子聚甲基丙烯酸甲酯PMMA复合材料与纳米陶瓷Zr和HAp材料制作髋关节假体的一部分(股骨球头)。本研究制备了三组杂化材料并进行了测试;研究了含有100% (PMMA)的第一种混合物、含有90% (PMMA) + 8% (Zr) + 2% (HAp)的第二种混合物和含有80% (PMMA) + 18% (Zr) + 2% (HAp)的第三种混合物。与纯聚合物PMMA样品相比,随着纳米陶瓷(Zr和HAp)浓度的增加,复合材料的力学性能有所提高。当Zr含量从8%增加到18%时,合金的硬度显著降低,Zr- PMMA基体接触的均匀性下降,硬度值分别为(68、80和70)Kg。三种混合物分别为Mm。磨损试验结果与硬度试验结果一致。上述磨损试验样品的失重量分别为(0.041,0.035,0.037)。根据力学性能,最佳样品为(90% (PMMA) + 8% (Zr) + 2% (HAp))。扫描电镜结果显示,含(90% (PMMA) + 8% (Zr) + 2% (HAp))的第二种样品混合物中,颗粒沿晶界形成半连续网络,具有低原子堆积和高能量的特点。这将使晶界更具活性,增强力学性能。利用SBF进行体外测试的光学显微镜、扫描电镜和x射线能谱分析表明,随着Ca和P元素浓度的增加,第二样品表面形成了HAp层。这种良好的结果证明了聚合物样品的生物相容性。
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Enhancement the Osseo Integration Properties of Polymer for Human Body Implants
In this research, polymer polymethyl methacrylate PMMA composite with nano ceramic Zr and HAp material were used to manufacture one part of the implant system (femoral ball head of hip implant). Three set of hybrid materials were fabricated and tested for this study; the first mixtures which contains 100% (PMMA), the second mixtures which contains (90% (PMMA) + 8% (Zr) + 2% (HAp)), and the third mixtures which contains (80% (PMMA) + 18% (Zr) + 2% (HAp)) were investigated. The mechanical properties for these mixtures increased with the increasing of nano ceramic concentration (Zr and HAp) composite material in the polymer compared to pure polymer PMMA sample. However, an increase in the concentration of Zr from 8% to 18% content cause a considerable decrease of the hardness where a drop of homogeneity in Zr- matrix PMMA contact occurred, V Hardness value are (68 ,80 and 70) Kg.mm for three mixture respectively. The wear test was in agreement with results of the hardness test. The weight loss of the above samples of the wear test were (0.041, 0.035 and 0.037) respectively. According to mechanical properties, the best sample contains (90% (PMMA) + 8% (Zr) + 2% (HAp)). The Scanning electron microscopy resolute showed the particles forming semi-continuous network along grain boundaries polymer for second sample mixtures containing (90% (PMMA) + 8% (Zr) + 2% (HAp)), provides a low atomic packing and high energy. This will make the grain boundaries more reactive and strengthen mechanical performance. The Optical microscopy, Scanning electron microscopy and Xray spectroscopy analysis for In vitro test using SBF shows the growth of HAp layer with an increase in concentration of Ca and P elements formed on the surface of the second sample. This display of good results is a proof of the biocompatibility of the polymer sample.
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