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Effect of crystallization heat treatment on the microstructure of niobium-doped fluorapatite glass-ceramics

机译:结晶热处理对铌掺杂氟比玻璃陶瓷微观结构的影响

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摘要

Our goal was to study the effect of heat treatment temperature and heating rate on the microstructure and crystalline phases and assess the domain of existence of sub-micrometer fluorapatite crystals in niobium-doped fluorapatite glass-ceramics for biomedical applications. Glass-ceramic specimens were prepared by casting and heat treatment between 700 and 1200°C using a fast or a slow heating rate. The microstructure was characterized by atomic force microscopy and scanning electron microscopy. Crystalline phases were analyzed by x-ray diffraction. AFM of the as-cast glass revealed that amorphous phase separation occurred in this system. XRD confirmed the presence of fluorapatite in all specimens, together with forsterite and enstatite at higher temperatures. Both heating rate and heat treatment temperature strongly influenced microstructure and crystallinity. A dual microstructure with sub-micrometer fluorapatite crystals and polygonal forsterite crystals was obtained when slow heating rates and crystallization temperatures between 950 and 1100°C were used. Needle-shaped fluorapatite crystals appeared after heat treatment above 1100°C. Fast heating rates led to an increase in crystal size. Heat treatment temperatures should remain below 1100°C, together with slow heating rates, to prevent crystal dissolution, and preserve a dual microstructure of finely dispersed sub-micrometer crystals without growth of needle-shaped crystals.
机译:我们的目标是研究热处理温度和加热速率对微观结构和结晶阶段的影响,并评估铌掺杂氟磷酸盐玻璃陶瓷中亚微米磷灰石晶体的存在域,用于生物医学应用。通过使用快速或缓慢的加热速率通过700和1200℃的浇铸和热处理来制备玻璃陶瓷样品。通过原子力显微镜和扫描电子显微镜表征微观结构。通过X射线衍射分析结晶相。 AFM的铸造玻璃揭示了该系统中发生的无定形相分离。 XRD在所有标本中证实了氟磷灰石的存在,以及在较高温度下的Forsterite和Enstatite。加热速率和热处理温度都强烈影响微观结构和结晶度。当使用缓慢加热速率和950-1100℃之间的慢速加热速率和结晶温度时,获得具有亚微米磷灰石晶体和多边形叉炉晶体的双微观结构。在1100℃以上的热处理后出现针状氟磷灰石晶体。快速加热速率导致晶体尺寸的增加。热处理温度应保持在1100°C以下,加上缓慢的加热速率,以防止晶体溶解,并保持细分分散的亚微米晶体的双微观结构,而不会生长针状晶体。

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