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Silica and core-shell nanospheres by supercritical fluid assisted sol-gel synthesis

机译:通过超临界流体辅助溶胶 - 凝胶合成二氧化硅和核 - 壳纳米球

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Fabrication of monodisperse pure silica and core-shell nanospheres (Fe_2O_3@SiO_2 and Fe_2O_3@SiO_2) was done in straight forward one-pot method combining sol-gel chemistry and supercritical fluids. For the core-shell materials, preformed nanoparticles stabilized in hexane were dispersed in a sol containing a silicon alkoxide, water and acetone as the solvent. The precursor solution was introduced in an autoclave and pressurized with compressed CO_2. Then, pressure and temperature were raised over the supercritical conditions of the CO_2/acetone mixture allowing the silicon alkoxide to hydrolyze and condensate forming the silica shell. The composite gel nanospheres got dried as the solvent was extracted at supercritical conditions. They present a narrow particle size distribution (with less than 30% polidispersity). Each nanosphere consists of a functional core of several non-contacting γ-Fe_2O_3 nanoparticles and/or quantum dots surrounded by a microporous silica shell. Their size can be tuned by controlling the reaction conditions. The same synthetic approach is followed to fabricate microporous pure silica nanoparticles. Advantages of the method are short reaction times compared to non-supercritical sol-gel procedures, high reaction yield and purity of the product. In addition, the method has potentiality to be scaled up.
机译:单分散纯二氧化硅和核 - 壳纳米球的制备(Fe_2O_3 @ SiO_2和Fe_2O_3 @ SiO_2)是以直接的单罐方法组合的,组合溶胶 - 凝胶化学和超临界流体。对于核 - 壳材料,将在己烷中稳定的预制纳米颗粒分散在含有硅醇盐,水和丙酮作为溶剂的溶胶中。在高压釜中引入前体溶液并用压缩的CO_2加压。然后,在CO_2 /丙酮混合物的超临界条件下升高压力和温度,允许硅醇盐水化和缩合成型二氧化硅壳。在超临界条件下萃取溶剂时,复合凝胶纳米球干燥。它们呈现窄粒度分布(具有少于30%的政治性)。每个纳米卫星由几种非接触γ-Fe_2O_3纳米颗粒的功能核和/或由微孔二氧化硅壳包围的量子点组成。通过控制反应条件,可以调整它们的尺寸。遵循相同的合成方法来制造微孔纯二氧化硅纳米粒子。与非超临界溶胶 - 凝胶程序相比,该方法的优点是与非超临界溶胶 - 凝胶程序相比,高反应产率和产物的纯度。此外,该方法具有潜力缩放。

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