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以SiO、YO和AlO作为烧结助剂的氮化硅陶瓷的增强力学性能及体外生物活性

Enhanced mechanical properties and in vitro bioactivity of silicon nitride ceramics with SiO, YO, and AlO as sintering aids.

作者信息

Han Yongning, Zhou Wenying, Li Jian, Han Zhuoqun, Bi Lunan, Zhang Zheng, Wang Yang, Li Ling, Zhao Degang

机构信息

School of Materials Science and Engineering, University of Jinan, Jinan, 250022, China.

Shandong Industrial Ceramics Research & Design Institute Co., Ltd., Zibo, 255000, China.

出版信息

J Mech Behav Biomed Mater. 2025 Apr;164:106901. doi: 10.1016/j.jmbbm.2025.106901. Epub 2025 Jan 20.

Abstract

Silicon nitride (Si₃N₄) ceramics exhibit excellent mechanical properties and biocompatibility, making them highly suitable for biomedical applications, particularly in implants. In this study, the mechanical properties and bioactivity of Si₃N₄ ceramics with varying amounts of Y₂O₃-Al₂O₃-SiO₂ sintering aids were investigated. Increasing the sintering additive content from 4 wt% to 8 wt% substantially improved the bulk density of the ceramics, leading to notable enhancements in mechanical properties. These included a Vickers hardness increase to 10.07 GPa, a flexural strength increase to 605 MPa, and a fracture toughness increase to 2.43 MPa m. The optimal combination of mechanical properties was achieved with 8 wt% sintering additives due to the higher aspect ratio and lower porosity. After immersion in simulated body fluid (SBF), the surface of the Si₃N₄ ceramics was coated with a Ca and P-rich layer, morphologically similar to hydroxyapatite. The layer formation was facilitated by the presence of SiO₂, which promoted hydroxyapatite nucleation and growth, as well as the rapid release of Ca⁺ ions and the sustained stability of the apatite layer.

摘要

氮化硅(Si₃N₄)陶瓷具有优异的机械性能和生物相容性,使其非常适合生物医学应用,特别是在植入物方面。在本研究中,研究了含有不同量Y₂O₃ - Al₂O₃ - SiO₂烧结助剂的Si₃N₄陶瓷的机械性能和生物活性。将烧结添加剂含量从4 wt%增加到8 wt%可显著提高陶瓷的堆积密度,从而显著提高机械性能。这些性能包括维氏硬度提高到10.07 GPa、弯曲强度提高到605 MPa以及断裂韧性提高到2.43 MPa·m。由于更高的长径比和更低的孔隙率,8 wt%的烧结添加剂实现了机械性能的最佳组合。在模拟体液(SBF)中浸泡后,Si₃N₄陶瓷表面形成了一层富含Ca和P的层,形态上类似于羟基磷灰石。SiO₂的存在促进了该层的形成,它促进了羟基磷灰石的成核和生长,以及Ca⁺离子的快速释放和磷灰石层的持续稳定性。

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