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首页> 外文期刊>Journal of Functional Biomaterials >Fabrication and Multiscale Structural Properties of Interconnected Porous Biomaterial for Tissue Engineering by Freeze Isostatic Pressure (FIP)
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Fabrication and Multiscale Structural Properties of Interconnected Porous Biomaterial for Tissue Engineering by Freeze Isostatic Pressure (FIP)

机译:冷冻等静压(FIP)制备的组织工程用互连生物材料的制备和多尺度结构特性

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Biomaterial for tissue engineering is a topic of huge progress with a recent surge in fabrication and characterization advances. Biomaterials for tissue engineering applications or as scaffolds depend on various parameters such as fabrication technology, porosity, pore size, mechanical strength, and surface available for cell attachment. To serve the function of the scaffold, the porous biomaterial should have enough mechanical strength to aid in tissue engineering. With a new manufacturing technology, we have obtained high strength materials by optimizing a few processing parameters such as pressure, temperature, and dwell time, yielding the monolith with porosity in the range of 80%–93%. The three-dimensional interconnectivity of the porous media through scales for the newly manufactured biomaterial has been investigated using newly developed 3D correlative and multi-modal imaging techniques. Multiscale X-ray tomography, FIB-SEM Slice & View stacking, and high-resolution STEM-EDS electronic tomography observations have been combined allowing quantification of morphological and geometrical spatial distributions of the multiscale porous network through length scales spanning from tens of microns to less than a nanometer. The spatial distribution of the wall thickness has also been investigated and its possible relationship with pore connectivity and size distribution has been studied.
机译:随着制造和表征方面的最新发展,用于组织工程的生物材料是一个巨大的进步主题。用于组织工程应用或用作支架的生物材料取决于各种参数,例如制造技术,孔隙率,孔径,机械强度和可用于细胞附着的表面。为了发挥支架的功能,多孔生物材料应具有足够的机械强度以帮助组织工程。借助新的制造技术,我们通过优化一些加工参数(例如压力,温度和保压时间)获得了高强度材料,从而获得了孔隙率在80%至93%范围内的整料。使用新开发的3D相关和多模态成像技术,对新型制造的生物材料通过刻度的多孔介质的三维互连性进行了研究。多尺度X射线断层摄影,FIB-SEM切片和视图堆叠以及高分辨率STEM-EDS电子断层摄影观察相结合,可以通过数十到更少的长度尺度量化多尺度多孔网络的形态和几何空间分布比一纳米。还研究了壁厚的空间分布,并研究了其与孔隙连通性和尺寸分布的可能关系。

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