首页> 外文期刊>Journal of inorganic and organometallic polymers and materials >Development of Triphasic Hydroxyapatite/(a and β)-Tricalcium Phosphate Based Composites by Sintering Powder of Calcium-Apatite in the Presence of Montmorillonite
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Development of Triphasic Hydroxyapatite/(a and β)-Tricalcium Phosphate Based Composites by Sintering Powder of Calcium-Apatite in the Presence of Montmorillonite

机译:通过在Montmorililonite存在下烧结磷灰石烧结粉末磷酸三羟基磷灰石/(A和β)复合材料的研制

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摘要

In recent years, the development of calcium phosphate/clay composites for bone tissue engineering attracted a lot of interest. In this study, novel bio-composites composed of hydroxyapatite (HAP), alpha and beta-tricalcium phosphate (alpha, beta-TCP) and sodium-montmorillonite (MNa) were developed. The composites were prepared by sintering at 900 degrees C of calcium-apatite powders in the presence of various amounts of MNa. The calcium-apatite precursors were prepared by the wet precipitation method with two desired Ca/P molar ratios (1.660 and 1.623). Fourier transform infrared spectroscopy (FTIR) and X-ray diffraction (XRD) were used to characterize the prepared composites. The results showed that during the sintering process, a surface interaction apatite/MNa led to the incorporation of clay ions into the apatite structure resulting in its decomposition and formation of composite ceramics comprising HAP, beta and alpha-TCP. The decomposition of apatite increased with increasing MNa content and with decreasing Ca/P ratio. The decomposition of stoichiometric HAP led to triphasic ceramics with substituted-HAP as the major phase while the decomposition of calcium-deficient HAP led to triphasic ceramics with substituted-alpha-TCP as the major phase. Combination of MNa-clay phase and substituted-alpha-TCP can improve both mechanical and biological properties of the prepared composites.
机译:近年来,磷酸钙/粘土复合材料的发展吸引了很多兴趣。在该研究中,开发了由羟基磷灰石(HAP),α和β-三钙(α,Beta-TCP)和钠-MONTMORILLILLINS(MNA)组成的新型生物复合材料。通过在各种量的MNA存在下在900摄氏度的钙 - 磷灰石粉末中烧结来制备复合材料。通过具有两个所需的Ca / P摩尔比(1.660和1.623)的湿沉淀法制备钙磷灰石前体。傅里叶变换红外光谱(FTIR)和X射线衍射(XRD)用于表征制备的复合材料。结果表明,在烧结过程中,表面相互作用磷灰石/ mNA导致粘土离子掺入磷灰石结构中,导致其分解和形成包含HAP,β和α-TCP的复合陶瓷。磷灰石的分解随着MNA含量的增加和CA / P比率降低而增加。化学计量Hap的分解导致足球陶瓷用替代Hap作为主要阶段,而钙缺陷的Hap的分解导致足球陶瓷作为主要阶段的取代alpha-tcp。 MNA-粘土相和取代 - α-TCP的组合可以改善制备复合材料的机械和生物学性质。

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