首页> 外文会议>Symposium and Annual Meeting of the International Society for Ceramics in Medicine >Bioceramics are not Bioinert: The Role of Oxide and Non-Oxide Bioceramics on the Oxidation of UHMWPE Components in Artificial Joints
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Bioceramics are not Bioinert: The Role of Oxide and Non-Oxide Bioceramics on the Oxidation of UHMWPE Components in Artificial Joints

机译:生物陶瓷不是Bioinert:氧化物和非氧化物生物陶瓷在人工关节中氧化物氧化物氧化的作用

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This present research is aimed at understanding the influence of Zirconia-Toughened Alumina (ZTA) and Silicon Nitride (Si_3N_4) on Ultra-High Molecular Weight Polyethylene (UHMWPE) acetabular liners. Bioceramic femoral heads were systematically tested against UHMWPE in controlled environment according to static/load-free coupling in hydrothermal environment, pin-on-ball wear testing, and hip-simulator wear testing. In addition, a retrieved ZTA femoral head has been analyzed and results have been compared to the simulations. Experimental results from X-ray photoelectron (XPS), cathodoluminescence (CL), Raman and Fourier-Transformed Infrared spectroscopy suggest that, despite conventional notions imply that bioceramics are inert, the surface chemistry of bioceramics was relevant to the oxidation rate of polyethylene liners. Non-biointertness could either be advantageous or disadvantageous toward polyethylene oxidation. The main reason resides in the peculiar chemical interactions between polyethylene and different bioceramics; more specifically, it depends on the direction of oxygen flow at the interface between the ceramic and the polymer. ZTA femoral heads were found to release a non-negligible amount of oxygen moieties from their surfaces, thus accelerating oxidative degradation of polyethylene. Conversely, Si_3N_4 ceramics exerted a protective role towards the polyethylene liner by scavenging oxygen from the tribolayer. The results of this work provide new insights into the interaction between bioceramics and polymers, which should also be considered when designing the next generation artificial hip joints with significantly elongated lifetimes.
机译:本研究旨在了解氧化锆增韧氧化铝(ZTA)和氮化硅(Si_3N_4)对超高分子量聚乙烯(UHMWPE)髋臼衬里的影响。根据热热环境,铅球磨损试验和髋部模拟器磨损测试,在受控环境中系统地测试了生物陶瓷股骨头的受控环境中的UHMWPE。另外,已经分析了检索到的ZTA股头头,并将结果与​​模拟进行了比较。 X射线光电子(XPS),阴极发光(Cl),拉曼和傅里叶转化的红外光谱的实验结果表明,尽管传统观念意味着生物陶瓷是惰性的,但是生物陶瓷的表面化学与聚乙烯衬垫的氧化速率相关。非生物深度可以是有利的或对聚乙烯氧化的不利影响。主要原因是聚乙烯和不同杀菌剂之间的特殊化学相互作用;更具体地,取决于陶瓷和聚合物之间的界面处的氧气流动方向。发现ZTA股骨头从它们的表面释放不可忽略量的氧气部分,从而加速聚乙烯的氧化降解。相反,Si_3N_4陶瓷通过从Tribolayer中扫描氧气来施加朝向聚乙烯衬垫的保护作用。这项工作的结果为生物陶瓷和聚合物之间的相互作用提供了新的见解,在设计下一代人工髋关节时,也应考虑具有显着细长的寿命的下一代人工髋关节。

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