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Materials doping through sol–gel chemistry: a little something can make a big difference

机译:通过溶胶-凝胶化学法掺杂的材料:一点点改变就可以带来很大的不同

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摘要

Several examples of sol–gel preparation of doped materials are taken to illustrate the various situations where the doping elements are responsible for the main function of the material or govern its structure. Other examples are used to illustrate that sometimes unexpected effects can be observed like structural modification and the appearance of new properties. Rare earth doped scintillators demonstrate higher homogeneity for materials prepared via sol–gel chemistry when compared with classical solid state reaction. The XRD study of rare earth doped orthoborates shows that doping can affect the vaterite to calcite phase transition observed in these compounds. A Raman spectroscopic study has been performed on doped silica xerogels and it has been shown that doping ions can modify greatly the densification process in these amorphous materials. Finally, it has been evidenced that sol–gel chemistry allows the preparation of bioactive ceramics with enhanced properties. In particular Zn-doped HAP with anti inflammatory properties has been prepared and Sr-doped bioactive glasses have demonstrated superior in-vitro bioactivity as evidenced by PIXE-RBS study.
机译:以溶胶-凝胶法制备掺杂材料的几个例子说明了各种情况,其中掺杂元素负责材料的主要功能或控制其结构。其他示例用于说明有时可以观察到意想不到的效果,例如结构修改和新特性的出现。与经典的固态反应相比,稀土掺杂的闪烁体对通过溶胶-凝胶化学制备的材料表现出更高的均质性。稀土掺杂原硼酸盐的XRD研究表明,掺杂会影响在这些化合物中观察到的球v石到方解石的相变。在掺杂的二氧化硅干凝胶上进行了拉曼光谱研究,结果表明掺杂离子可以极大地改变这些无定形材料中的致密化过程。最后,有证据表明,溶胶-凝胶化学可以制备具有增强性能的生物活性陶瓷。尤其是,已经制备了具有抗炎特性的掺锌的HAP,掺Pr的生物活性玻璃已证明具有优异的体外生物活性,这一点已通过PIXE-RBS研究证明。

著录项

  • 来源
    《Journal of Sol-Gel Science and Technology》 |2008年第3期|259-271|共13页
  • 作者单位

    Laboratoire des Matériaux Inorganiques CNRS UMR 6002 Université Blaise Pascal Clermont-Ferrand 2 24 Avenue des Landais 63177 Aubiere Cedex France;

    Laboratoire de Physique Corpusculaire de Clermont-Ferrand CNRS/IN2P3 UMR 6533 Université Blaise Pascal Clermont-Ferrand 2 24 Avenue des Landais 63177 Aubiere Cedex France;

    Laboratoire de Physique Corpusculaire de Clermont-Ferrand CNRS/IN2P3 UMR 6533 Université Blaise Pascal Clermont-Ferrand 2 24 Avenue des Landais 63177 Aubiere Cedex France;

    Laboratoire de Spectrochimie Infrarouge et Raman CNRS UMR 8516 Centre d’Etudes et de Recherches Lasers et Applications Université des Sciences et Technologies de Lille 59655 Villeneuve d’Ascq France;

    Laboratoire de Physique Corpusculaire de Clermont-Ferrand CNRS/IN2P3 UMR 6533 Université Blaise Pascal Clermont-Ferrand 2 24 Avenue des Landais 63177 Aubiere Cedex France;

    Laboratoire de Microscopie Electronique INSERM – ERM 0203 IFR 53 1 rue du Maréchal Juin Reims Cedex 51095 France;

    Laboratoire des Matériaux Inorganiques CNRS UMR 6002 Université Blaise Pascal Clermont-Ferrand 2 24 Avenue des Landais 63177 Aubiere Cedex France;

    Laboratoire des Matériaux Inorganiques CNRS UMR 6002 Université Blaise Pascal Clermont-Ferrand 2 24 Avenue des Landais 63177 Aubiere Cedex France;

    Laboratoire de Spectrochimie Infrarouge et Raman CNRS UMR 8516 Centre d’Etudes et de Recherches Lasers et Applications Université des Sciences et Technologies de Lille 59655 Villeneuve d’Ascq France;

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

    Doping; Bioceramics; Glasses; Scintillators; Structure; Silica gels; Raman spectroscopy; Hydroxyapatite; Bioactive glasses;

    机译:掺杂;生物陶瓷;玻璃;闪烁剂;结构;硅胶;拉曼光谱;羟基磷灰石;生物活性玻璃;

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