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High performance hydroxyapatite ceramics and a triply periodic minimum surface structure fabricated by digital light processing 3D printing

机译:高性能羟基磷灰石陶瓷和经过数字光处理3D打印制造的三个周期性表面结构

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High performance hydroxyapatite (HA) ceramics with excellent densification and mechanical properties were successfully fabricated by digital light processing (DLP) three-dimensional (3D) printing technology. It was found that the sintering atmosphere of wet CO2 can dramatically improve the densification process and thus lead to better mechanical properties. HA ceramics with a relative density of 97.12% and a three-point bending strength of 92.4 MPa can be achieved at a sintering temperature of 1300 , which makes a solid foundation for application °C in bone engineering. Furthermore, a relatively high compressive strength of 4.09 MPa can be also achieved for a DLP-printed p-cell triply periodic minimum surface (TPMS) structure with a porosity of 74%, which meets the requirement of cancellous bone substitutes. A further cell proliferation test demonstrated that the sintering atmosphere of wet CO2 led to improve cell vitality after 7 days of cell culture Moreover, with the possible benefit from the bio-inspired structure, the 3D-printed TPMS structure significantly improved the cell vitality, which is crucial for early osteogenesis and osteointegration.
机译:通过数字光处理(DLP)三维(3D)印刷技术成功制造了具有优异致密化和机械性能的高效羟基磷灰石(HA)陶瓷。发现湿CO2的烧结气氛可以显着改善致密化过程,从而导致更好的机械性能。具有97.12%的相对密度和92.4MPa的三点弯曲强度的HA陶瓷可以在1300的烧结温度下实现,这为骨工程中的应用°C具有坚实的基础。此外,对于DLP印刷的P细胞三个周期性最小表面(TPMS)结构也可以实现4.09MPa的相对高的抗压强度,其孔隙率为74%,这符合松质骨代替的要求。进一步的细胞增殖试验表明,湿二氧化碳的烧结气氛导致细胞培养7天后的细胞生命力改善,随着生物启发结构的可能性,3D印刷的TPMS结构显着提高了细胞生命力,这对早期成骨和骨囊组成至关重要。

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