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首页> 外文期刊>Journal of Molecular Structure >Effect of sintering temperatures on the in?vitro bioactivity, molecular structure and mechanical properties of titanium/carbonated hydroxyapatite nanobiocomposites
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Effect of sintering temperatures on the in?vitro bioactivity, molecular structure and mechanical properties of titanium/carbonated hydroxyapatite nanobiocomposites

机译:烧结温度对钛/碳酸盐羟基磷灰化型纳米复合材料的体外生物活性,分子结构和力学性能的影响

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摘要

AbstractTitanium-containing carbonated hydroxyapatite (Ti-CHA) nanocomposite powders, with different CHA contents, have been prepared using high-energy ball milling method. The effect of sintering temperatures, 900, 1100 and 1300?°C on molecular structure and microstructure of these samples were examined by XRD; Fourier transform infrared (FTIR) spectroscopy and scanning electron microscopy (SEM), respectively. Furthermore, their mechanical properties including hardness, longitudinal modulus, Young's modulus, shear modulus, bulk modulus and Poisson's ratio were measured by ultrasonic non-destructive technique. Moreover, bioactivity of sintered samples at different firing temperatures was assessed by immersing them in simulated body fluid at 37?±?0.5?°C for 7 days and then, analyzed by FTIR spectroscopy. The results pointed out that increasing sintering temperature up to 1100?°C caused significant increases in densities and mechanical properties of these nanocomposite samples. However, further increase of firing temperature to 1300?°C was responsible for complete CHA decomposition and the resultant α-tricalcium (α-TCP) phase greatly affected these properties. On the contrary, better bioactivity was observed for sintered samples at 900?°C only. However, increase of sintering temperature of these samples up to 1300?°C led to severe decrease in their bioactivity due to the formation of highly soluble α-TCP phase.Highlights?High-energy ball milling method.?Titanium-containing carbonated hydroxyapatite (Ti-CHA) nanocomposite powders.?The effect of sintering temperatures.]]>
机译:<![CDATA [ 抽象 含钛碳酸盐羟基磷灰石(Ti-Cha)纳米复合材料粉末,具有不同的CHA含量,已经使用高 - 元丸铣削方法。通过XRD检查烧结温度,900,1100和1300°C对这些样品的微观结构和微观结构的影响;傅里叶变换红外(FTIR)光谱和扫描电子显微镜(SEM)。此外,通过超声非破坏性技术测量了它们的机械性能,包括硬度,纵向模量,杨氏模量,剪切模量,散塞量和泊松比。此外,通过将模拟体液中的37〜±0.5℃浸入模拟体液中的7天,通过FTIR光谱分析来评估不同烧制温度下的烧结样品的生物活性。结果指出,增加烧结温度高达1100Ω°C引起这些纳米复合材料样品的密度和机械性能的显着增加。然而,将烧制温度的进一步增加到1300°C的原因对完全的CHA分解,并且所得α-三胞(α-TCP)相位大受影响这些性质。相反,仅针对900°C的烧结样品观察到更好的生物活性。然而,由于形成高度可溶的α-TCP相,这些样品的烧结温度高达1300Ω°C的烧结温度导致其生物活性严重降低。 突出显示 高能球铣削方法。 含钛碳酸碳酸钠羟基磷灰石(Ti-cha)纳米复合材料粉末。 烧结温度的效果。 ]]>

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