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Interconnected porosity analysis by 3D X-ray microtomography and mechanical behavior of biomimetic organic-inorganic composite materials

机译:仿生有机-无机复合材料的3D X射线显微断面图和力学行为的互连孔隙分析

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摘要

Hydroxyapatite-based materials have been used for dental and biomedical applications. They are commonly studied due to their favorable response presented when used for replacement of bone tissue. Those materials should be porous enough to allow cell penetration, internal tissue growth, vascular incursion and nutrient supply. Furthermore, their morphology should be designed to guide the growth of new bone tissue in anatomically applicable ways. In this work, the mechanical performance and 3D X-ray microtomography (X-ray μCT) study of a biomimetic, organic-inorganic composite material, based on hydroxyapatite, with physicochemical, structural, morphological and mechanical properties very similar to those of natural bone tissue is reported. Ceramic pieces in different shapes and several porous sizes were produced using a Modified Gel Casting Method. Pieces with a controlled and 3D hierarchical interconnected porous structure were molded by adding polymethylmethacrylate microspheres. Subsequently, they were subject to a thermal treatment to remove polymers and to promote a sinterization of the ceramic particles, obtaining a HAp scaffold with controlled porosity. Then, two different organic phases were used to generate an organic-inorganic composite material, so gelatin and collagen, which was extracted from bovine tail, were used. The biomimetic organic-inorganic composite material was characterized by Scanning Electron Microscopy, Energy Dispersive X-ray Spectroscopy, X-ray Diffraction, Fourier Transform Infrared Spectroscopy and 3D X-ray microtomography techniques. Mechanical properties were characterized in compression tests, obtaining a dramatic and synergic increment in the mechanical properties due to the chemical and physical interactions between the two phases and to the open-cell cellular behavior of the final composite material; the maximum compressive strength obtained corresponds to about 3 times higher than that reported for natural cancellous bone. The pore size distribution obtained could be capable to allow cell penetration, internal tissue in-growth, vascular incursion and nutrient supply and this material has tremendous potential for use as a replacement of bone tissue or in the manufacture and molding of prosthesis with desired shapes.
机译:基于羟基磷灰石的材料已用于牙科和生物医学应用。由于它们在用于替换骨组织时呈现出良好的响应,因此通常对其进行研究。这些材料应具有足够的多孔性,以允许细胞渗透,内部组织生长,血管浸润和营养供应。此外,应将其形态设计为以解剖学适用的方式引导新骨组织的生长。在这项工作中,基于羟基磷灰石的仿生有机-无机复合材料的机械性能和3D X射线显微断层照相术(X-rayμCT)研究,其物理化学,结构,形态和机械性能与天然骨非常相似组织报道。使用改进的凝胶浇铸法生产了不同形状和几种多孔尺寸的陶瓷片。通过添加聚甲基丙烯酸甲酯微球来成型具有可控3D分层互连多孔结构的零件。随后,对它们进行热处理以除去聚合物并促进陶瓷颗粒的烧结,从而获得具有可控制的孔隙率的HAp支架。然后,使用两种不同的有机相生成有机-无机复合材料,因此使用了从牛尾提取的明胶和胶原蛋白。通过扫描电子显微镜,能量色散X射线光谱,X射线衍射,傅里叶变换红外光谱和3D X射线显微照相技术对仿生有机无机复合材料进行了表征。在压缩测试中对机械性能进行了表征,由于两相之间的化学和物理相互作用以及最终复合材料的开孔蜂窝行为,机械性能获得了显着的协同增效。获得的最大抗压强度相当于天然松质骨的抗压强度的三倍左右。所获得的孔径分布可能能够允许细胞渗透,内部组织向内生长,血管侵入和营养供应,并且这种材料具有巨大的潜力,可用于替代骨组织或用于制造和成型具有所需形状的假体。

著录项

  • 来源
    《Materials science & engineering》 |2017年第11期|45-53|共9页
  • 作者单位

    Division de Investigacion y Posgrado, Facultad de Ingenieria, Universidad Autonoma de Queretaro, Cerro de las Campanas S/N, Queretaro, Qro. C.P. 76010, Mexico;

    Division de Investigacion y Posgrado, Facultad de Ingenieria, Universidad Autonoma de Queretaro, Cerro de las Campanas S/N, Queretaro, Qro. C.P. 76010, Mexico;

    Centra de Fisica Aplicada y Tecnologia Avanzada, Universidad National Autonoma de Mexico, A.P. 1 -1010, Queretaro, Qro. 76000, Mexico;

    Division de Investigacion y Posgrado, Facultad de Ingenieria, Universidad Autonoma de Queretaro, Cerro de las Campanas S/N, Queretaro, Qro. C.P. 76010, Mexico;

    Instituto de Fisica, Universidad National Autonoma de Mexico, A.P. 20-364, Mexico, D.F. C.P. 01000, Mexico;

    CINVESTAV-Queretaro, Libramiento Norponiente # 2000, Fraccionamiento Real de Juriquilla, Queretaro C. P. 76230, Mexico;

    Centra de Geotiencias, Universidad National Autdnoma de Mexico, Campus Juriquilla, Boulevard Juriquilla 3001, Queretaro C.P. 76230, Mexico;

    Centra de Fisica Aplicada y Tecnologia Avanzada, Universidad National Autonoma de Mexico, A.P. 1 -1010, Queretaro, Qro. 76000, Mexico;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Hydroxyapatite; Mechanical characterization; Scaffold; Composite material; Porous material;

    机译:羟基磷灰石;机械特性脚手架;复合材料;多孔材料;

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