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Improving tribological and anti-bacterial properties of titanium external fixation pins through surface ceramic conversion

机译:通过表面陶瓷转化改善钛外固定销的摩擦学和抗菌性能

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摘要

In this study, an advanced ceramic conversion surface engineering technology has been applied for the first time to self-drilling Ti6Al4V external fixation pins to improve their performance in terms of biomechanical, bio-tribological and antibacterial properties. Systematic characterisation of the ceramic conversion treated Ti pins was carried out using Scanning electron microscope, X-ray diffraction, Glow-discharge optical emission spectroscopy, nano- and micro-indentation and scratching; the biomechanical and bio-tribological properties of the surface engineered Ti pins were evaluated by insertion into high density bone simulation material; and the antibacterial behaviour was assessed with Staphylococcus aureus NCTC 6571. The experimental results have demonstrated that the surfaces of Ti6Al4V external fixation pins were successfully converted into a TiO2 rutile layer (~2 μm in thickness) supported by an oxygen hardened case (~15 μm in thickness) with very good bonding due to the in-situ conversion nature. The maximum insertion force and temperature were reduced from 192N and 31.2 °C when using the untreated pins to 182N and 26.1 °C when the ceramic conversion treated pins were tested. This is mainly due to the significantly increased hardness (more than three times) and the effectively enhanced wear resistance of the cutting edge of the self-drilling Ti pins following the ceramic conversion treatment. The antibacterial tests also revealed that there was a significantly reduced number of bacteria isolated from the ceramic conversion treated pins compared to the untreated pins of around 50 % after 20 h incubation, P < 0.01 (0.0024). The results reported are encouraging and could pave the way towards high-performance anti-bacterial titanium external fixation pins with reduced pin-track infection and pin loosing.
机译:在这项研究中,先进的陶瓷转换表面工程技术已首次应用于自钻Ti6Al4V外固定销,以提高其在生物力学,生物摩擦学和抗菌性能方面的性能。使用扫描电子显微镜,X射线衍射,辉光放电光发射光谱,纳米压痕和微压痕和划痕对陶瓷转化处理过的Ti引脚进行系统表征。通过插入高密度骨模拟材料中来评估表面工程化Ti销的生物力学和生物摩擦学性能;并用金黄色葡萄球菌NCTC 6571评估了抗菌性能。实验结果表明,Ti6Al4V外固定钉的表面成功地转化为由氧硬化外壳(〜15μm)支撑的TiO2金红石层(厚度约2μm)。由于原位转换特性,具有非常好的粘合性。当使用未经处理的引脚时,最大插入力和最大温度从192N和31.2 C降低到测试陶瓷转化处理的引脚时的最大插入力和温度从182N和26.1 C降低。这主要是由于经过陶瓷转化处理后,硬度显着提高(超过三倍),并且自钻Ti销的刀刃的耐磨性得到了有效增强。抗菌测试还显示,与经过20µh孵育的未经处理的针相比,经陶瓷转化处理的针分离出的细菌数量明显减少,大约为50%,P <0.01(0.0024)。报告的结果令人鼓舞,并且可以为高性能的抗菌钛外固定销钉铺平道路,从而减少销钉痕迹的感染和销钉的松动。

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