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首页> 外文期刊>Applied Sciences >Tunable Degradation Rate and Favorable Bioactivity of Porous Calcium Sulfate Scaffolds by Introducing Nano-Hydroxyapatite
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Tunable Degradation Rate and Favorable Bioactivity of Porous Calcium Sulfate Scaffolds by Introducing Nano-Hydroxyapatite

机译:纳米羟基磷灰石引入多孔硫酸钙支架的可降解速率和良好的生物活性

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The bone scaffolds should possess suitable physicochemical properties and osteogenic activities. In this study, porous calcium sulfate (CaSO 4 ) scaffolds were fabricated successfully via selected laser sintering (SLS). Nano-hydroxyapatite (nHAp), a bioactive material with a low degradation rate, was introduced into CaSO 4 scaffolds to overcome the overquick absorption. The results demonstrated that nHAp could not only control the degradation rate of scaffolds by adjusting their content, but also improve the pH environment by alleviating the acidification progress during the degradation of CaSO 4 scaffolds. Moreover, the improved scaffolds were covered completely with the apatite spherulites in simulated body fluid (SBF), showing their favorable bioactivity. In addition, the compression strength and fracture toughness were distinctly enhanced, which could be ascribed to large specific area of nHAp and the corresponding stress transfer.
机译:骨支架应具有合适的理化性质和成骨活性。在这项研究中,成功​​地通过选择激光烧结(SLS)制备了多孔硫酸钙(CaSO 4)支架。纳米羟基磷灰石(nHAp)是一种降解速度低的生物活性材料,已被引入CaSO 4支架中以克服过快吸收的问题。结果表明,nHAp不仅可以通过调节其含量来控制支架的降解速率,而且可以通过减轻CaSO 4支架降解过程中的酸化进程来改善pH环境。此外,改良的支架被模拟体液(SBF)中的磷灰石球晶完全覆盖,显示出良好的生物活性。另外,抗压强度和断裂韧性明显提高,这归因于nHAp的大比表面积和相应的应力传递。

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