Zhong Gaoyan, Vaezi Mohammad, Mei Xinliang, Liu Ping, Yang Shoufeng
College of Engineering, Nanjing Agricultural University, Nanjing 210031, Jiangsu, China.
Faculty of Engineering and the Environment, University of Southampton, Southampton SO17 1BJ, Hampshire, U.K.
ACS Omega. 2019 Nov 5;4(21):19238-19245. doi: 10.1021/acsomega.9b02572. eCollection 2019 Nov 19.
A strategy for the preparation of bioactive poly-ether-ether-ketone/hydroxyapatite (PEEK/HA) composites was proposed in this study with the aim of controlling the biological and mechanical properties of different parts of the composites. The strategy integrated solvent-based extrusion freeforming 3D printing technology in order to print high-resolution HA scaffolds and compression molding processes for the production of bioactive PEEK/HA composites. To this end, an optimized model, established using response surface methodology, was employed to optimize the extrusion process parameters on the basis of accurate characterization of the extrusion pressure, and the effects of the filament/pore sizes on the PEEK infiltration depth into the HA scaffold were investigated. The results of scanning electron microscopy and computed tomography analyses revealed that the PEEK/HA composites exhibited a uniform microstructure and a good interface between the HA filaments and the PEEK matrix following the optimization of the process parameters. The HA scaffolds were fully infiltrated by PEEK in both vertical and lateral directions with an infiltration depth of 3 mm while maintaining the HA network structure and uniformity. The biological and mechanical performance test results validated that the PEEK/HA composites possessed excellent biocompatibility as well as yields and compressive strengths within the range of human cortical bone suitable for load-bearing applications.
本研究提出了一种制备生物活性聚醚醚酮/羟基磷灰石(PEEK/HA)复合材料的策略,旨在控制复合材料不同部位的生物学和力学性能。该策略整合了基于溶剂的挤出自由成型3D打印技术,以打印高分辨率的HA支架,并采用压缩成型工艺来生产生物活性PEEK/HA复合材料。为此,基于响应面法建立了一个优化模型,用于在精确表征挤出压力的基础上优化挤出工艺参数,并研究了长丝/孔径对PEEK渗入HA支架深度的影响。扫描电子显微镜和计算机断层扫描分析结果表明,在优化工艺参数后,PEEK/HA复合材料呈现出均匀的微观结构,HA长丝与PEEK基体之间具有良好的界面。HA支架在垂直和横向方向上均被PEEK完全渗透,渗透深度为3 mm,同时保持了HA网络结构和均匀性。生物学和力学性能测试结果证实,PEEK/HA复合材料具有优异的生物相容性,其屈服强度和抗压强度在适合承重应用的人体皮质骨范围内。