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Titanium dioxide nanoparticle coating in fluidized bed via supercritical anti-solvent process (SAS)

机译:通过超临界反溶剂工艺(SAS)在流化床中制备二氧化钛纳米颗粒涂层

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摘要

A process to coat nanoparticle agglomerates has been developed and its critical operation parameters have been studied in this work. It consists on a fluidized bed where a supercritical anti-solvent process (SAS) takes place. Titanium dioxide (TiO2), used as model nanoparticle, has been coated with a polymer, Pluronic F-127, from an ethanolic solution. As main factors that can affect the coating process, the following process parameters were studied: the ratio between the velocity of carbon dioxide through the bed and the minimum fluidization velocity (umf), with values from 1.5 to 2.5 times the umf; the density of carbon dioxide, varying from 640 kg/m3 to 735 kg/m3 approximately; the flow rate of solution, within an interval between 0.5-2 mL/min; the concentration of the solution, from 0.030 mg/mL to 0.090 mg/mL and the mass ratio polymer-particle, 0.45-1.8 g/g. The process parameters were selected taking into account the values that increased the yield, defined as gram of coating material per gram of introduced polymer amount, and maintained a unimodal particle size distribution (PSD), with low increment in the mean particle size with respect to raw TiO2. All the samples were analyzed by four different methods, which showed the successful results of the experiments. The yield was analyzed gravimetrically, and the PSD was determined by laser diffraction. The presence of polymer on the surface of the nanoparticle agglomerates was verified by FT-IR spectrum and fluorescence microscopy, which also showed the quality and uniformity of the coating. Furthermore, the bulk density of the samples was measured showing a lineal variation with the mass ratio polymer-particle.
机译:已经开发了涂覆纳米颗粒团聚物的方法,并且在这项工作中已经研究了其关键操作参数。它由流化床组成,在该流化床上进行超临界反溶剂工艺(SAS)。用作模型纳米粒子的二氧化钛(TiO2)已从乙醇溶液中涂有聚合物Pluronic F-127。作为可能影响涂层工艺的主要因素,研究了以下工艺参数:二氧化碳通过床层的速度与最小流化速度(umf)之比,该值是umf的1.5至2.5倍;二氧化碳的密度大约在640 kg / m3至735 kg / m3之间;溶液的流速,在0.5-2 mL / min的间隔内;溶液的浓度为0.030mg / mL至0.090mg / mL,聚合物颗粒的质量比为0.45-1.8g / g。选择工艺参数时要考虑增加产量的值,该值定义为每克引入的聚合物量中涂料的克数,并保持单峰粒径分布(PSD),相对于原料TiO2。通过四种不同的方法对所有样品进行了分析,显示了成功的实验结果。重量分析产率,并通过激光衍射确定PSD。通过FT-IR光谱和荧光显微镜检查证实了聚合物在纳米颗粒附聚物表面上的存在,这也表明了涂层的质量和均匀性。此外,测量样品的堆积密度,其显示出与聚合物颗粒的质量比成线性变化。

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