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Investigation of the hydration and bioactivity of radiopacified tricalcium silicate cement, Biodentine and MTA Angelus

机译:不透辐射的硅酸三钙水泥,Biodentine和MTA Angelus的水化和生物活性研究

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Objective. Novel root-end filling materials are composed of tricalcium silicate (TCS) and radiopacifier as opposed to the traditional mineral trioxide aggregate (MTA) which is made up of clinker derived from Portland cement and bismuth oxide. The aim of this research was to characterize and investigate the hydration of a tricalcium silicate-based proprietary brand cement (Biodentine™) and a laboratory manufactured cement made with a mixture of tricalcium silicate and zirconium oxide (TCS-20-Z) and compare their properties to MTA Angelus~(TM). Methods. The materials investigated included a cement containing 80% of TCS and 20% zirconium oxide (TCS-20-Z), Biodentine™ and MTA Angelus™. The specific surface area and the particle size distribution of the un-hydrated cements and zirconium oxide were investigated using a gas adsorption method and scanning electron microscopy. Un-hydrated cements and set materials were tested for mineralogy and microstructure, assessment of bioactivity and hydration. Scanning electron microscopy, X-ray energy dispersive analysis, X-ray fluorescence spectroscopy, X-ray diffraction, Rietveld refined X-ray diffraction and calorimetry were employed. The radiopacity of the materials was investigated using ISO 6876 methods. Results. The un-hydrated cements were composed of tricalcium silicate and a radiopacifier phase; zirconium oxide for both Biodentine™ and TCS-20-Z whereas bismuth oxide for MTA Angelus™. In addition Biodentine™ contained calcium carbonate particles and MTA Angelus™ exhibited the presence of dicalcium silicate, tricalcium aluminate, calcium, aluminum and silicon oxides. TCS and MTA Angelus™ exhibited similar specific surface area while Biodentine™ had a greater specific surface area. The cements hydrated and produced some hydrates located either as reaction rim around the tricalcium silicate grain or in between the grains at the expense of volume containing the water initially present in the mixture. The rate of reaction of tricalcium calcium silicate was higher for Biodentine™ than for TCS-20-Z owing to its optimized particle size distribution, the presence of CaCO_3 and the use of CaCl_2. Tricalcium calcium silicate in MTA hydrated even more slowly than TCS-20-Z as evident from the size of reaction rim representative of calcium silicate hydrate (C-S-H) around tricalcium silicate grains and the calorimetry measurements. On the other
机译:目的。新型的根端填充材料由硅酸三钙(TCS)和不透辐射剂组成,而传统的三氧化二矿物骨料(MTA)由波特兰水泥和氧化铋衍生的熟料组成。这项研究的目的是表征和研究以硅酸三钙为基础的专有品牌水泥(Biodentine™)和由硅酸三钙和氧化锆的混合物制成的实验室生产的水泥(TCS-20-Z)的水合性能,并对其进行比较。 MTA Angelus〜(TM)的属性。方法。研究的材料包括含有80%TCS和20%氧化锆(TCS-20-Z)的水泥,Biodentine™和MTA Angelus™。使用气体吸附法和扫描电子显微镜研究了未水合水泥和氧化锆的比表面积和粒度分布。测试了未水合的水泥和固化材料的矿物学和微观结构,评估了生物活性和水合性。使用扫描电子显微镜,X射线能量色散分析,X射线荧光光谱,X射线衍射,Rietveld精制X射线衍射和量热法。使用ISO 6876方法研究了材料的射线不透性。结果。未水合的水泥由硅酸三钙和不透射线的相组成。 Biodentine™和TCS-20-Z均采用氧化锆,而MTA Angelus™则采用氧化铋。此外,Biodentine™包含碳酸钙颗粒,MTA Angelus™表现出硅酸二钙,铝酸三钙,钙,铝和氧化硅的存在。 TCS和MTA Angelus™表现出相似的比表面积,而Biodentine™具有更大的比表面积。水泥水合并产生一些水合物,其作为反应边缘位于硅酸三钙颗粒周围或颗粒之间,但以包含最初存在于混合物中的水的体积为代价。由于Biodentine™的最佳粒度分布,CaCO_3的存在和CaCl_2的使用,Biodentine™的三钙硅酸钙的反应速率高于TCS-20-Z。从代表三水合硅酸钙晶粒周围的水合硅酸钙(C-S-H)的反应边的大小和量热法测量结果可以看出,MTA中三水合硅酸钙的水化速度甚至比TCS-20-Z还要慢。在另一

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