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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Pore size distribution analysis of selected hexagonal mesoporous silicas by grand canonical Monte Carlo simulations
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Pore size distribution analysis of selected hexagonal mesoporous silicas by grand canonical Monte Carlo simulations

机译:大正则蒙特卡罗模拟分析选择的六方介孔二氧化硅的孔径分布

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摘要

We combine here a regularization procedure with individual adsorption isotherms obtained from grand canonical Monte Carlo simulations in order to obtain reliable pore size distributions. The methodology is applied to two hexagonal high-ordered silica materials: SBA-15 and PHTS, synthesized in our laboratory. Feasible pore size distributions are calculated through an adaptable procedure of deconvolution over the adsorption integral equation, with two necessary inputs: the experimental adsorption data and individual adsorption isotherms, assuming the validity of the independent pore model. The application of the deconvolution procedure implies an adequate grid size evaluation (i.e., numbers of pores and relative pressures to be considered for the inversion, or kernel size), the fulfillment of the discret Picard condition, and the appropriate choice of the regularization parameter (L-curve criteria). Assuming cylindrical geometry for both porous materials, the same set of individual adsorption isotherms generated from molecular simulations can be used to construct the kernel to obtain the PSD of SBA-15 and PHTS. The PSD robustness is measured imposing random errors over the experimental data. Excellent agreement is found between the calculated and the experimental global adsorption isotherms for both materials. Molecular simulations provide new insights into the studied systems, pointing out the need of high-resolution isotherms to describe the presence of complementary microporosity in these materials.
机译:为了获得可靠的孔径分布,我们在这里将正则化程序与从大正则蒙特卡罗模拟中获得的各个吸附等温线结合在一起。该方法适用于我们实验室合成的两种六角形高阶二氧化硅材料:SBA-15和PHTS。通过对吸附积分方程进行反褶积的一种自适应过程,通过两个必要的输入来计算可行的孔径分布:假设独立孔隙模型的有效性,则为实验吸附数据和单个吸附等温线。去卷积过程中的应用意味着足够的网格大小的评价(即,孔和相对压力的编号,以被认为是反转,或内核大小),离散的皮卡德条件的履行,和正则化参数的适当选择( L曲线标准)。假设两种多孔材料的圆柱几何形状,可以使用分子模拟生成的相同的一组单独的吸附等温线来构建内核,以获得SBA-15和PHTS的PSD。测量PSD的鲁棒性,对实验数据施加随机误差。在两种材料的计算的和实验的整体吸附等温线之间发现了极好的一致性。分子模拟为所研究的系统提供了新的见解,指出需要高分辨率等温线来描述这些材料中互补微孔的存在。

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