Chen Sheng-Gui, Yang Junzhong, Jia Yong-Guang, Lu Bingheng, Ren Li
School of Materials Science and Engineering, South China University of Technology, Guangzhou 510641, China.
National Engineering Research Center for Tissue Restoration and Reconstruction, Guangzhou 510006, China.
Nanomaterials (Basel). 2019 Jul 22;9(7):1049. doi: 10.3390/nano9071049.
The future of manufacturing applications in three-dimensional (3D) printing depends on the improvement and the development of materials suitable for 3D printing technology. This study aims to develop an applicable and convenient protocol for light-curing resin used in 3D industry, which could enhance antibacterial and mechanical properties of polymethyl methacrylate (PMMA) resin through the combination of nano-fillers of surface modified titanium dioxide (TiO) and micro-fillers of polyetheretherketone (PEEK). PMMA-based composite resins with various additions of TiO and PEEK were prepared and submitted to characterizations including mechanical properties, distribution of the fillers (TiO or/and PEEK) on the fractured surface, cytotoxicity, antibacterial activity, and blood compatibility assessment. These results indicated that the reinforced composite resins of PMMA (TiO-1%-PEEK-1%) possessed the most optimized properties compared to the other groups. In addition, we found the addition of 1% of TiO would be an effective amount to enhance both mechanical and antibacterial properties for PMMA composite resin. Furthermore, the model printed by PMMA (TiO-1%-PEEK-1%) composite resin showed a smooth surface and a precise resolution, indicating this functional dental restoration material would be a suitable light-curing resin in 3D industry.
三维(3D)打印制造应用的未来取决于适用于3D打印技术的材料的改进和发展。本研究旨在开发一种适用于3D行业的光固化树脂的便捷方案,该方案可通过将表面改性二氧化钛(TiO)纳米填料与聚醚醚酮(PEEK)微填料相结合来提高聚甲基丙烯酸甲酯(PMMA)树脂的抗菌性能和机械性能。制备了添加不同量TiO和PEEK的PMMA基复合树脂,并对其进行了表征,包括机械性能、填料(TiO或/和PEEK)在断裂表面的分布、细胞毒性、抗菌活性和血液相容性评估。这些结果表明,与其他组相比,PMMA增强复合树脂(TiO-1%-PEEK-1%)具有最优化的性能。此外,我们发现添加1%的TiO是提高PMMA复合树脂机械性能和抗菌性能的有效用量。此外,由PMMA(TiO-1%-PEEK-1%)复合树脂打印的模型表面光滑,分辨率精确,表明这种功能性牙齿修复材料将是3D行业中一种合适的光固化树脂。