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Effect of Temperature on Annealing Products of Synthesized Opal Matrices

机译:温度对合成蛋白石基质退火产物的影响

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In this paper, we describe the synthesis of opal matrices by the sol-gel method and the α-cristobalite production from them by high-temperature annealing. Both the conditions for preparing synthetic opal matrices by the hydrolysis of tetraethoxysilane in a binary ethanol-water solvent using an ammonia solution as a catalyst and the reagent concentrations for this process are described in detail. The silica particles were prepared by multistage growth to the required size at addition of tetraethoxysilane to the reaction mixture. A temperature regime for drying the siliceous xerogel with the production of porous matrices for further use and annealing to obtain high-purity α-cristobalite is proposed. Structural adjustments, such as an increase in the matrix density, their hardening, and a temperature-dependent change in the matrix porosity, are described. Open-pore matrices consisting of amorphous silicon dioxide are prepared by annealing up to 1100°C. The prepared matrices can later be used for their impregnation with various compositions to obtain various types of sensors, composite materials, and inverted matrices. The transition of a silica xerogel from an amorphous state to a crystalline state with the formation of low-temperature α-cristobalite with an α-tridymite admixture by drying and annealing at 1300°C is shown. Further annealing at 1650°C leads to the formation of a transparent nonporous sample of α-cristobalite. All processes were performed under the control of scanning electron microscopy, Raman spectroscopy, and X-ray diffraction analysis.
机译:在本文中,我们描述了通过溶胶-凝胶法合成蛋白石基质以及通过高温退火从中制备α-方石英的方法。详细描述了通过使用氨溶液作为催化剂,在二元乙醇-水溶剂中通过四乙氧基硅烷的水解制备合成蛋白石基质的条件,以及该方法的试剂浓度。在向反应混合物中加入四乙氧基硅烷后,通过多步生长至所需尺寸来制备二氧化硅颗粒。提出了一种干燥硅质干凝胶,制备多孔基质以供进一步使用和退火以获得高纯度α-方石英的温度方案。描述了结构调整,例如基质密度的增加,其硬化以及基质孔隙率随温度的变化。由无定形二氧化硅组成的开孔基质是通过在最高1100°C的温度下退火制备的。所制备的基质随后可用于其以各种组合物浸渍,以获得各种类型的传感器,复合材料和倒置基质。示出了二氧化硅干凝胶从非晶态到结晶态的转变,其中通过在1300℃下干燥和退火而形成了具有α-绿霞石混合物的低温α-方石英。在1650℃下进一步退火导致形成透明的无孔α-方英石样品。所有过程均在扫描电子显微镜,拉曼光谱和X射线衍射分析的控制下进行。

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