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Synthesis and evaluation of bioceramics for orthopedics and tissue culture applications.

机译:用于骨科和组织培养应用的生物陶瓷的合成和评估。

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摘要

Hydroxyapatite is the most well known phosphate in the biologically active phosphate ceramic family by virtue of its similarity to natural bone mineral. Among all bioglass compositions BioglassRTM45S5 is one of the most bioactive glasses. This study initially started by adding different amounts (1, 2.5, 5, 10, and 25 wt.%) of BioglassRTM45S5 to synthetic hydroxyapatite in order to improve the bioactivity of these bioceramics.;The chemistries formed by sintering and their effect on different material properties including bioactivity were identified by using various techniques, such as powder and thin film x-ray diffraction, scanning electron microscopy coupled with energy dispersive X-ray spectroscopy, X-ray absorption near edge spectroscopy, compression test, and nano indentation. All the results demonstrated that 10 and 25 wt.% BioglassRTM45S5 addition to hydroxyapatite and sintering at 1200°C for 4 hours yield new compositions with main Ca 5(PO4)2SiO4 and Na3Ca 6(PO4)5 crystalline phases dispersed in silicate glassy matrices, respectively. In addition, in vitro bioactivity tests such as bone like apatite formation in simulated body fluid and bone marrow stromal cell culture have shown that the crystalline and amorphous phases have an important role on improving bioactivity of these bioceramic compositions. Besides, compression test and nano indentation has given important information on compression strength and nano structure properties of these newly composed bioceramic materials and the bone like apatite layers formed on them, respectively. Finally, the effect of silicate addition on both formation and bioactivity of Na3Ca6(PO4)5 bioceramics were shown. These findings and different techniques used assisted to develop a phenomenological approach to demonstrate how the novel bioceramic compositions were composed and aid improving bioactivity of known bioceramic materials.
机译:羟基磷灰石由于其与天然骨矿物质的相似性而成为生物活性磷酸盐陶瓷家族中最著名的磷酸盐。在所有生物玻璃组合物中,BioglassRTM45S5是最具生物活性的玻璃之一。这项研究最初是通过向合成的羟基磷灰石中添加不同量(1、2.5、5、10和25 wt。%)的BioglassRTM45S5来提高这些生物陶瓷的生物活性的;通过烧结形成的化学物质及其对不同材料的影响通过使用各种技术(包括粉末和薄膜X射线衍射,扫描电子显微镜与能量色散X射线光谱法,近边缘光谱法的X射线吸收,压缩测试和纳米压痕)可以识别出包括生物活性在内的各种特性。所有结果表明,向羟基磷灰石中添加10和25 wt。%的BioglassRTM45S5,并在1200°C烧结4小时,得到新的组成,其主要的Ca 5(PO4)2SiO4和Na3Ca 6(PO4)5结晶相分散在硅酸盐玻璃状基质中,分别。另外,体外生物活性测试,例如在模拟体液中的骨样磷灰石形成和骨髓基质细胞培养表明,晶相和无定形相对改善这些生物陶瓷组合物的生物活性具有重要作用。此外,压缩试验和纳米压痕分别提供了有关这些新组成的生物陶瓷材料及其上形成的骨状磷灰石层的压缩强度和纳米结构性能的重要信息。最后,显示了添加硅酸盐对Na3Ca6(PO4)5生物陶瓷的形成和生物活性的影响。这些发现和所使用的不同技术有助于开发一种现象学方法,以证明新型生物陶瓷组合物是如何组成的,并有助于改善已知生物陶瓷材料的生物活性。

著录项

  • 作者

    Demirkiran, Hande.;

  • 作者单位

    The University of Texas at Arlington.;

  • 授予单位 The University of Texas at Arlington.;
  • 学科 Engineering Biomedical.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 265 p.
  • 总页数 265
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;工程材料学;
  • 关键词

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