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Computational studies on structures and ionic diffusion of bioactive glasses.

机译:生物活性玻璃的结构和离子扩散的计算研究。

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摘要

Bioactive glasses are a class of synthetic inorganic material that have wide orthopedics, dentistry, tissue engineering and other biomedical applications. The origin of the bioactivity is closely related to the atomic structures of these novel glass materials, which otherwise lack long range order and defies any direct experimental measurements due to their amorphous nature. The structure of bioactive glasses is thus essential for the understanding of bioactive behaviors and eventually rational design of glass compositions. In this dissertation, molecular dynamics (MD) and reverse monte carlo (RMC) based computer simulations have been used to systematically study the atomic structure of three classes of new bioactive glasses: strontium doped 45S5 BioglassRTM, ZnO-SrO containing bioactive glasses, and Cao-MgO-P 2O5-SiO2 bioactive glasses. Properties such as ionic diffusion that are important to glass dissolution behaviors are also examined as a function of glass compositions. The accuracy of structure model generated by simulation was validated by comparing with various experimental measurements including Xray/ neutron diffraction, NMR and Raman spectroscopy. It is shown in this dissertation that atomistic computer simulations, when integrated with structural and property characterizations, is an effective tool in understanding the structural origin of bioactivity and other properties of amorphous bioactive materials that can lead to design of novel materials for biomedical applications.
机译:生物活性玻璃是一类合成的无机材料,具有广泛的骨科,牙科,组织工程学和其他生物医学应用。生物活性的起源与这些新型玻璃材料的原子结构密切相关,否则它们缺乏长程有序性,并且由于其无定形性质而无法进行任何直接的实验测量。因此,生物活性玻璃的结构对于理解生物活性行为以及最终合理设计玻璃组合物至关重要。在本文中,基于分子动力学(MD)和反向蒙特卡洛(RMC)的计算机模拟已被用于系统地研究三类新型生物活性玻璃的原子结构:锶掺杂的45S5 BioglassRTM,含ZnO-SrO的生物活性玻璃和Cao -MgO-P 2O5-SiO2生物活性玻璃。对玻璃溶解行为很重要的特性(如离子扩散)也要根据玻璃成分进行检查。通过与各种实验测量值(包括X射线/中子衍射,NMR和拉曼光谱)进行比较,验证了通过仿真生成的结构模型的准确性。论文表明,原子计算机模拟与结构和性质表征相结合时,是了解生物活性的结构起源和非晶态生物活性材料的其他特性的有效工具,可导致设计用于生物医学的新型材料。

著录项

  • 作者

    Xiang, Ye.;

  • 作者单位

    University of North Texas.;

  • 授予单位 University of North Texas.;
  • 学科 Biomedical engineering.;Engineering.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 206 p.
  • 总页数 206
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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