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Low temperature fabrication of spherical brushite granules by cement paste emulsion

机译:水泥浆乳液低温制备球形透钙磷石颗粒

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摘要

Secondary protonated calcium phosphates such as brushite (CaHPO_4·2H_2O) or monetite (CaHPO_4) have a higher resorption potential in bone defects than sintered ceramics, e.g. tricalcium phosphate or hydroxyapatite. However, processing of these phosphates to monolithic blocks or granules is not possible by sintering due to thermal decomposition of protonated phosphates at higher temperatures. In this study a low temperature technique for the preparation of spherical brushite granules in a cement setting reaction is presented. These granules were synthesized by dispersing a calcium phosphate cement paste composed of β-tricalcium phosphate and monocalcium phosphate together with a surfactant to an oil/water emulsion. The reaction products were characterized regarding their size distribution, morphology, and phase composition. Clinically relevant granule sizes ranging from 200 urn to 1 mm were obtained, whereas generally smaller granules were received with higher oil viscosity, increasing temperature or higher powder to liquid ratios of the cement paste. The hardened granules were microporous with a specific surface area of 0.7 m~2/g and consisted of plate-like brushite (>95 % according to XRD) crystals of 0.5-7 μm size. Furthermore it was shown that the granules may be also used for drug delivery applications. This was demonstrated by adsorption of vancomycin from an aqueous solution, where a load of 1.45-1.88 mg drug per g granules and an almost complete release within 2 h was obtained.
机译:次生质子化磷酸钙,例如透钙磷石(CaHPO_4·2H_2O)或褐铁矿(CaHPO_4)在骨缺损中具有比烧结陶瓷(例如陶瓷)更高的吸收潜能。磷酸三钙或羟基磷灰石。然而,由于在较高温度下质子化的磷酸盐的热分解,不可能通过烧结将这些磷酸盐加工成整体块或颗粒。在这项研究中,提出了一种在水泥固化反应中制备球形透钙磷石颗粒的低温技术。通过将由β-磷酸三钙和磷酸一钙与表面活性剂一起组成的磷酸钙水泥糊剂分散到油/水乳液中来合成这些颗粒。对反应产物的尺寸分布,形态和相组成进行表征。临床上可获得的颗粒尺寸为200微米至1毫米,而通常会收到较小的颗粒,其油粘度更高,温度升高或水泥浆的粉液比更高。硬化的颗粒是微孔的,比表面积为0.7 m〜2 / g,由0.5-7μm大小的板状透钙磷石(根据XRD值> 95%)组成。此外,已经表明该颗粒也可以用于药物递送应用。万古霉素从水溶液中吸附可以证明这一点,其中每克颗粒的载药量为1.45-1.88 mg,在2小时内几乎完全释放。

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  • 来源
    《Journal of materials science》 |2012年第11期|2631-2637|共7页
  • 作者单位

    Department for Functional Materials in Medicine and Dentistry, University of Wuerzburg, Pleicherwall 2, 97070 Wuerzburg, Germany;

    Department for Functional Materials in Medicine and Dentistry, University of Wuerzburg, Pleicherwall 2, 97070 Wuerzburg, Germany;

    Department for Functional Materials in Medicine and Dentistry, University of Wuerzburg, Pleicherwall 2, 97070 Wuerzburg, Germany;

    Faculty of Dentistry, McGill University. Montreal, QC, Canada;

    Department for Functional Materials in Medicine and Dentistry, University of Wuerzburg, Pleicherwall 2, 97070 Wuerzburg, Germany;

    Department for Functional Materials in Medicine and Dentistry, University of Wuerzburg, Pleicherwall 2, 97070 Wuerzburg, Germany;

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