Liu Xiaoling, Grant David M, Palmer Graham, Parsons Andrew J, Rudd Chris D, Ahmed Ifty
Division of Materials, Mechanics and Structures, Faculty of Engineering, University of Nottingham, Nottingham, NG7 2RD, UK.
Biomaterials and Tissue Engineering, Eastman Dental Institute, University College London, 256 Gray's Inn Road, London, WC1X 8LD, UK.
J Biomed Mater Res B Appl Biomater. 2015 Oct;103(7):1424-32. doi: 10.1002/jbm.b.33324. Epub 2014 Nov 18.
Bioresorbable composites have shown much potential for bone repair applications, as they have the ability to degrade completely over time and their degradation and mechanical properties can be tailored to suit the end application. In this study, phosphate glass fiber (from the system 45% P2 O5-16% CaO-24% MgO-11% Na2 O-4% Fe2 O3 (given in mol%)) were used to reinforce polycaprolactone (PCL) with approximately 20% fiber volume fraction. The glass fiber surfaces were coated with magnesium (Mg) through magnetron sputtering to improve the fiber-matrix interfacial properties. The Mg coating provided a rough fiber surface (roughness (Ra) of about 44nm). Both noncoated and Mg-coated fiber-reinforced composites were assessed. The water uptake and mass loss properties for the composites were assessed in phosphate-buffered saline (PBS) at 37°C for up to 28 days, and ion release profiles were also investigated in both water and PBS media. Inhibition of media influx was observed for the Mg-coated composites. The composite mechanical properties were characterized on the basis of both tensile and flexural tests and their retention in PBS media at 37°C was also investigated. A higher retention of the mechanical properties was observed for the Mg-coated composites over the 28 days degradation period.
生物可吸收复合材料在骨修复应用中显示出了巨大潜力,因为它们能够随着时间的推移完全降解,并且其降解和机械性能可以进行调整以适应最终应用。在本研究中,使用了磷酸盐玻璃纤维(来自45% P2O5 - 16% CaO - 24% MgO - 11% Na2O - 4% Fe2O3体系(以摩尔百分比给出))来增强聚己内酯(PCL),纤维体积分数约为20%。通过磁控溅射在玻璃纤维表面涂覆镁(Mg)以改善纤维 - 基体界面性能。Mg涂层使纤维表面粗糙(粗糙度(Ra)约为44nm)。对未涂覆和Mg涂覆的纤维增强复合材料都进行了评估。在37°C的磷酸盐缓冲盐水(PBS)中对复合材料的吸水性和质量损失性能进行了长达28天的评估,并且还在水和PBS介质中研究了离子释放曲线。观察到Mg涂覆的复合材料对介质流入有抑制作用。基于拉伸和弯曲试验对复合材料的机械性能进行了表征,并且还研究了它们在37°C的PBS介质中的性能保持情况。在28天的降解期内,观察到Mg涂覆的复合材料具有更高的机械性能保持率。