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Microwave annealing for preparation of crystalline hydroxyapatite thin films

机译:微波退火制备结晶羟基磷灰石薄膜

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摘要

A sol was spun on single crystal silicon substrates at a spin-rate of 3000–5000 rpm followed by a low temperature cure to form a stable sol–gel/silicon structure. Good quality crystalline HA films of thickness ∼300–400 nm were obtained by annealing the sol–gel/Si structure in a conventional cavity applicator microwave system with a magnetron power of 1300 W, frequency of 2.45 GHz, and at a low processing temperature of 425 °C for annealing times ranging from 2–60 min. X-ray Diffraction and FTIR analysis confirmed that the crystalline quality of the thin films were comparable or better than those heat-treated under the same processing conditions (temperature and time) in a Rapid Thermal Annealing (RTA) system. The RBS data suggests a composition corresponding to stoichiometric hydroxyapatite Ca10(PO4)6(OH)2, the major inorganic component of bone. The results showed that the HA film thickness decreases with increasing sol spin-rate. The HA films showed good biocompatibility because little monocyte adhesion occurred and hence no inflammatory response was activated in vitro. The potential of microwave annealing for rapid and low temperature processing of good crystalline quality HA thin films derived from sol–gel is demonstrated.
机译:将溶胶以3000-5000 rpm的旋转速度旋转到单晶硅衬底上,然后进行低温固化以形成稳定的溶胶-凝胶/硅结构。通过在常规腔体施加器微波系统中以1300 W的磁控管功率,2.45 GHz的频率和较低的加工温度对溶胶-凝胶/硅结构进行退火,可以获得厚度约为300-400 nm的高质量晶体HA膜。 425°C的退火时间为2-60分钟。 X射线衍射和FTIR分析证实,薄膜的结晶质量与在快速热退火(RTA)系统中在相同加工条件(温度和时间)下进行热处理的薄膜的晶体质量相当或更好。 RBS数据表明其组成与化学计量的羟基磷灰石Ca10 (PO4 )6 (OH)2 (骨骼的主要无机成分)相对应。结果表明,HA膜厚度随溶胶自旋速率的增加而减小。 HA膜显示出良好的生物相容性,因为几乎没有单核细胞粘附发生,因此在体外未激活炎症反应。证明了微波退火在快速和低温处理溶胶-凝胶衍生的高质量结晶HA薄膜方面的潜力。

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  • 来源
    《Journal of Materials Science》 |2006年第21期|7150-7158|共9页
  • 作者单位

    Department of Physics University of the Western Cape;

    CSIR Materials Science and Manufacturing;

    Department of Bioengineering Arizona State University;

    Department of Bioengineering Arizona State University;

    Department of Chemical and Materials Engineering Arizona State University;

    Department of Chemical and Materials Engineering Arizona State University;

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