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Pore size fractal dimension for characterizing Au/TiO2 catalyst

机译:用于表征Au / TiO2催化剂的孔径分形尺寸

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摘要

The quality and assessment of a catalyst can be documented in detail by the application of pore size. This research aims to calculate fractal dimension from the relationship among pore size, maximum pore size and wetting phase saturation and to confirm it by the fractal dimension derived from the relationship among the ratio between surface area per unit pore volume, entry surface area per unit pore volume and wetting phase saturation. In this research, pore size was measured on Au/TiO2 using Brunauer-Emmett-Teller (BET) surface area. Two equations for calculating the fractal dimensions have been employed. The first one describes the functional relationship between wetting phase saturation, pore size, maximum pore size and fractal dimension. The second equation implies to the wetting phase saturation as a function of surface area per unit pore volume, entry surface area per unit pore volume and the fractal dimension. Two procedures for obtaining the fractal dimension have been utilized. The first procedure was done by plotting the logarithm of the ratio between pore size and maximum pore size versus logarithm wetting phase saturation. The positive slope of the first procedure = 3 - Df (fractal dimension). The second procedure for obtaining the fractal dimension was determined by plotting the logarithm of the ratio between surface area per unit pore volume, entry surface area per unit pore volume versus the logarithm of wetting phase saturation. The negative slope of the second procedure = Df - 3. It was found that the plasma + thermally treated Au/TiO2 has the highest fractal dimension value owing to possibility of having holes and channels. The results also show similarity between pore size fractal dimension and surface area per unit pore volume fractal dimension. In our case, as conclusions, the higher the fractal dimension, the better the catalytic activity.
机译:通过孔径的应用,可以详细记录催化剂的质量和评估。本研究旨在从孔径,最大孔径和润湿相位饱和的关系中计算分形尺寸,并通过分形尺寸来证实,分形尺寸来自每个单位孔体积的表面积之间的比例之间的关系,每单位孔的进入表面积体积和润湿相位饱和度。在该研究中,使用Brunauer-Emmett-Teller(Bet)表面积在Au / TiO2上测量孔径。采用了用于计算分形尺寸的两个方程。第一个描述润湿相饱和,孔径,最大孔径和分形尺寸之间的功能关系。第二方程意味着作为每单位孔体积的表面积,每单位孔隙体积的进入表面积和分形尺寸的旋转相饱和度。已经使用了用于获得分形尺寸的两个程序。第一种方法是通过绘制孔径和最大孔径与对数润湿相位饱和度之间的比率的对数进行。第一程序的正斜率= 3 - DF(分形尺寸)。通过绘制每单位孔隙体积的表面积与表面积之间的比率的对数,每单位孔隙体积的进入表面积与润湿相位饱和的对数来确定第二种方法。第二种方法的负斜率= DF - 3.发现血浆+热处理的Au / TiO2由于具有孔和通道的可能性而具有最高的分形尺寸值​​。结果还显示了孔径分形尺寸和每单位孔体积分形尺寸的表面积之间的相似性。在我们的情况下,作为结论,分形尺寸越高,催化活性越好。

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