Department of Chemical and Biomolecular Engineering, North Carolina State University , Raleigh, North Carolina 27695, United States.
Langmuir. 2017 Oct 24;33(42):11231-11245. doi: 10.1021/acs.langmuir.7b02260. Epub 2017 Oct 4.
Recently, several experimental and simulation studies have found that phenomena that normally occur at extremely high pressures in a bulk phase can occur in nanophases confined within porous materials at much lower bulk phase pressures, thus providing an alternative route to study high-pressure phenomena. In this work, we examine the effect on the tangential pressure of varying the molecular shape, strength of the fluid-wall interactions, and pore width, for carbon slit-shaped pores. We find that, for multisite molecules, the presence of additional rotational degrees of freedom leads to unique changes in the shape of the tangential pressure profile, especially in larger pores. We show that, due to the direct relationship between the molecular density and the fluid-wall interactions, the latter have a large impact on the pressure tensor. The molecular shape and pore size have a notable impact on the layering of molecules in the pore, greatly influencing both the shape and scale of the tangential pressure profile.
最近,一些实验和模拟研究发现,在大块相中通常在极高压力下出现的现象,可以在多孔材料中纳米相受限的情况下在低得多的大块相压力下出现,从而为研究高压现象提供了另一种途径。在这项工作中,我们研究了改变分子形状、流体-壁相互作用强度和孔径对碳狭缝状孔的切向压力的影响。我们发现,对于多站点分子,额外的旋转自由度的存在导致切向压力分布的形状发生独特的变化,特别是在较大的孔中。我们表明,由于分子密度和流体-壁相互作用之间的直接关系,后者对压力张量有很大的影响。分子形状和孔径对分子在孔中的分层有显著的影响,极大地影响了切向压力分布的形状和尺度。