首页> 外文期刊>International Journal of Quantum Chemistry >Preparation of monodispersed microporous SiO2 microspheres with high specific surface area using dodecylamine as a hydrolysis catalyst
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Preparation of monodispersed microporous SiO2 microspheres with high specific surface area using dodecylamine as a hydrolysis catalyst

机译:以十二烷基胺为水解催化剂制备高比表面积单分散微孔SiO2微球

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摘要

A novel and simple method for the synthesis of monodispersed microporous SiO2 microspheres with high specific surface area was developed by hydrolysis of tetraethoxysilane (TEOS) in a water-ethanol mixed solution and using dodecylamine (DDA) as hydrolysis catalyst and template. The as-prepared products were characterized with differential thermal analysis-thermogravimetry, scanning electron microscopy, high-resolution transmission electron microscopy, small angle X-ray diffraction and nitrogen adsorption. The effects of experimental conditions including hydrolysis temperatures, calcination temperature and concentrations of TEOS and DDA on the morphology and pore parameters of the as-prepared SiO2 Microspheres were investigated and discussed. The results showed that hydrolysis temperature and concentrations of TEOS and DDA are important parameters for the control of size and morphology of particles. The specific surface area and specific pore volume of the as-prepared SiO2 microspheres increased with increasing DDA concentration and calcination temperature. DDA may act not only as a good hydrolysis catalyst but also as a template for the formation of monodispersed SiO2 microspheres with high specific surface area. This research may provide new insight into the synthesis of monodispersed microporous SiO2 microspheres. (c) 2005 Elsevier Inc. All rights reserved.
机译:通过在水-乙醇混合溶液中水解四乙氧基硅烷(TEOS)并使用十二烷基胺(DDA)作为水解催化剂和模板,开发了一种新颖且简单的合成具有高比表面积的单分散微孔SiO2微球的方法。通过差示热分析-热重分析,扫描电子显微镜,高分辨率透射电子显微镜,小角X射线衍射和氮吸附来表征所制备的产物。研究并讨论了水解温度,煅烧温度以及TEOS和DDA浓度等实验条件对制备的SiO2微球形态和孔参数的影响。结果表明,水解温度和TEOS和DDA的浓度是控制颗粒尺寸和形态的重要参数。所制备的SiO 2微球的比表面积和比孔体积随着DDA浓度和煅烧温度的增加而增加。 DDA不仅可以充当良好的水解催化剂,而且还可以作为形成具有高比表面积的单分散SiO2微球的模板。这项研究可能为单分散的微孔SiO2微球的合成提供新的见解。 (c)2005 Elsevier Inc.保留所有权利。

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