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Evaluation nanostructure properties of bioactive glass scaffolds for bone tissue engineering

机译:骨组织工程生物活性玻璃支架的评价纳米结构性能

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The use of biomaterials in bone tissue engineering newly has been developed. They are biocompatible material which are reabsorbed in body and replaced with newly formed tissue. Bioactive glass scaffolds will be appropriate candidates if pore morphology, size and structures are controlled. Scaffolds with nanostructure will provide these goals. In this research bioglass powder was synthesized with sol-gel method to achieve nanostructure powder. The glass powder was characterized with transmission electron microscope (TEM). Scaffolds were prepared with combination of bioglass powder and sugar as porogen followed by pressing at 80 MPa then sintering at 1050°C. The morphology of sintered scaffolds was characterized with scanning electron microscope (SEM) and porosity was measured with density method. Mechanical properties were assessed with compressive strength. The TEM results show that synthesized powder has particle size about 25 nm. The SEM results show that nanopores and macropores are connectively distributed in whole part of scaffolds. The compressive strength of scaffolds was 0.8 MPa. Overall, the scaffold is suggested that is appropriate alternative for bone tissue engineering.
机译:新增使用生物材料在骨组织工程中的使用。它们是生物相容性材料,其在体内重新吸收并用新形成的组织替换。如果孔形态,尺寸和结构,生物活性玻璃支架将是适当的候选者。具有纳米结构的支架将提供这些目标。在该研究中,用溶胶 - 凝胶法合成生物胶粉,以实现纳米结构粉末。玻璃粉末以透射电子显微镜(TEM)为特征。用生物胶粉和糖的组合制备支架,然后在10mpa下压制在1050℃下烧结。用扫描电子显微镜(SEM)表征烧结支架的形态,用密度法测量孔隙率。用抗压强度评估机械性能。 TEM结果表明,合成粉末具有约25nm的粒径。 SEM结果表明,纳米孔和大孔在整个部件的支架中连接。支架的抗压强度为0.8MPa。总的来说,建议支架是骨组织工程的适当替代品。

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