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几何和化学性质均异质孔隙中的毛细管凝结:分子模拟研究

Capillary condensation in a geometrically and a chemically heterogeneous pore: a molecular simulation study.

作者信息

Puibasset Joël

机构信息

Centre de Recherche sur la Matière Divisée, CNRS-Université d'Orléans, 1b, rue de la Ferollerie, 45071 Orléans Cedex 02, France.

出版信息

J Phys Chem B. 2005 Mar 17;109(10):4700-6. doi: 10.1021/jp037696d.

Abstract

A computer simulation study has been carried out, using an extended Gibbs ensemble Monte Carlo technique, to examine the influence of so-called geometric and chemical disorder on the thermodynamic behavior of simple fluids confined in porous media. The technique allows the equilibrium coexistence of gas and liquid phases to be calculated in a single run. The phase diagram of Lennard-Jones fluid has been calculated in a perfectly cylindrical pore as a reference. Some disorder is then introduced in the porous material, first by spatially modifying the external potential of the initially cylindrical pore, to imitate the geometric disorder of a more realistic pore (undulation, constrictions, etc.) and second by modulating the amplitude of the same initially cylindrical potential to reproduce the energetic disorder of realistic pores due to chemical variations along it. It is shown that the chemical disorder has a much stronger effect on the phase diagram of the confined fluid. The complete adsorption/desorption isotherms are also calculated to help in understanding the large effects of chemical disorder.

摘要

已使用扩展的吉布斯系综蒙特卡罗技术进行了一项计算机模拟研究,以考察所谓的几何和化学无序对限制在多孔介质中的简单流体热力学行为的影响。该技术允许在单次运行中计算气相和液相的平衡共存。作为参考,已计算出完美圆柱形孔隙中 Lennard-Jones 流体的相图。然后在多孔材料中引入一些无序,首先通过在空间上修改初始圆柱形孔隙的外部势,以模拟更实际孔隙的几何无序(起伏、收缩等),其次通过调制相同初始圆柱形势的幅度,以再现由于沿其化学变化导致的实际孔隙的能量无序。结果表明,化学无序对受限流体的相图有更强的影响。还计算了完整的吸附/解吸等温线,以帮助理解化学无序的巨大影响。

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