Department of Physics and Materials Science, Faculty of Science, Chiang Mai University, Chiang Mai, Thailand.
Office of Research Administration, Chiang Mai University, Chiang Mai, Thailand.
Microsc Res Tech. 2023 Jul;86(7):882-897. doi: 10.1002/jemt.24364. Epub 2023 May 26.
In this research, the bioceramics system of nano-hydroxyapatite-cobalt ferrite or Ca (PO4) (OH) /xCoFe O (HAP/xCF), where x = 0-3 vol%, were studied. The effect of CF concentration on phase evolution, physical, microstructure, mechanical, and magnetic properties as well as the in-vitro apatite-forming ability and cell culture analysis of the HAP ceramic was investigated. XRD revealed that all HAP/xCF ceramics showed high purity of hydroxyapatite with calcium and phosphate. However, the peak of the CF phase is noted for the HAP + 3 vol% CF ceramic. The densification and mechanical properties (HV, HK, σ , and σ ) decreased with increasing the CF additive, which correlated to all HAP/xCF ceramics exhibited porous structure with increasing the percentage of porosity. The average grain size also increased with increasing the CF content. An improvement of magnetic behavior, which increasing of the M , H , and μ values, was obtained for the higher CF ceramics. In-vitro apatite-forming ability test suggested that the HAP + 3 vol% CF porous ceramic has a good apatite-forming ability. The cell culture analysis indicated that the proliferation of cells was above 97% for the HAP + 3 vol% CF porous ceramic, which means that the prepared ceramic is biocompatible. Based on the obtained results indicated that these ceramics are promising biomedical application candidates. RESEARCH HIGHLIGHTS: We fabricated the HAP/xCF ceramics by a simple solid-state reaction method. The addition of CF into HAP exhibited magnetic improvement and produced the porous ceramic, which caused good apatite-forming ability. The cell culture analysis indicated that the HAP + 3 vol% CF ceramic is biocompatible.
在这项研究中,研究了纳米羟基磷灰石-钴铁氧体或 Ca(PO4)(OH)/xCoFe2O4(HAP/xCF)的生物陶瓷体系,其中 x=0-3vol%。研究了 CF 浓度对 HAP 陶瓷的相演变、物理、微观结构、机械和磁性能以及体外磷灰石形成能力和细胞培养分析的影响。XRD 表明,所有 HAP/xCF 陶瓷均显示出高纯度的羟基磷灰石,具有钙和磷酸盐。然而,CF 相的峰值在 HAP+3vol%CF 陶瓷中被注意到。随着 CF 添加剂的增加,致密化和机械性能(HV、HK、σ和σ)降低,这与所有 HAP/xCF 陶瓷表现出的多孔结构以及孔隙率百分比的增加有关。平均晶粒尺寸也随着 CF 含量的增加而增加。较高 CF 陶瓷的磁性能得到改善,M、H 和 μ 值增加。体外磷灰石形成能力测试表明,HAP+3vol%CF 多孔陶瓷具有良好的磷灰石形成能力。细胞培养分析表明,HAP+3vol%CF 多孔陶瓷的细胞增殖率高于 97%,这意味着所制备的陶瓷是生物相容的。基于所获得的结果表明,这些陶瓷是有前途的生物医学应用候选材料。研究亮点:我们通过简单的固态反应法制备了 HAP/xCF 陶瓷。CF 加入 HAP 中表现出磁性能的改善,并产生了多孔陶瓷,从而具有良好的磷灰石形成能力。细胞培养分析表明,HAP+3vol%CF 陶瓷是生物相容的。