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Phase coexistence in heterogeneous porous media:A new extension to Gibbs ensemble Monte Carlo simulation method

机译:异质多孔介质中的相共存:Gibbs集合蒙特卡罗模拟方法的新扩展

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The effect of confinement on phase behavior of simple fluids is still an area of intensive research.In between experiment and theory,molecular simulation is a powerful tool to study the effect of confinement in realistic porous materials,containing some disorder.Previous simulation works aiming at establishing the phase diagram of a confined Lennard-Jones-type fluid,concentrated on simple pore geometries (slits or cylinders).The development of the Gibbs ensemble Monte Carlo technique by Panagiotopoulos [Mol.Phys.61,813 (1987)],greatly favored the study of such simple geometries for two reasons.First,the technique is very efficient to calculate the phase diagram,since each run (at a given temperature) converges directly to an equilibrium between a gaslike and a liquidlike phase.Second,due to volume exchange procedure between the two phases,at least one invariant direction of space is required for applicability of this method,which is the case for slits or cylinders.Generally,the introduction of some disorder in such simple pores breaks the initial invariance in one of the space directions and prevents to work in the Gibbs ensemble.The simulation techniques for such disordered systems are numerous (grand canonical Monte Carlo,molecular dynamics,histogram reweighting,N-P-T+test method,Gibbs-Duhem integration procedure,etc.).However,the Gibbs ensemble technique,which gives directly the coexistence between phases,was never generalized to such systems.In this work,we focus on two weakly disordered pores for which a modified Gibbs ensemble Monte Carlo technique can be applied.One of the pores is geometrically undulated,whereas the second is cylindrical but presents a chemical variation which gives rise to a modulation of the wall potential.In the first case almost no change in the phase diagram is observed,whereas in the second strong modifications are reported.
机译:限制对简单流体的相行为的影响仍是深入研究的领域。在实验和理论之间,分子模拟是研究限制在具有某些无序性的现实多孔材料中的影响的有力工具。建立集中于简单孔隙几何形状(狭缝或圆柱体)的Lennard-Jones型受限流体的相图。Panagiotopoulos [Golbbs Physo Monte Carlo]技术的发展[Mol.Phys.61,813(1987)]极受青睐。对这种简单的几何形状进行研究的原因有两个。首先,该技术对于计算相图非常有效,因为每次运行(在给定温度下)都直接收敛于气态和液态相之间的平衡。第二,由于体积交换在两个阶段之间的过程中,该方法的适用性至少需要一个不变的空间方向,狭缝或圆柱体就是这种情况。在这种简单的毛孔中发生某种紊乱会破坏空间方向之一的初始不变性,并阻止在吉布斯系综中起作用。此类无序系统的模拟技术很多(大经典蒙特卡洛方法,分子动力学,直方图加权,NP- T + test方法,Gibbs-Duhem积分程序等)。但是,直接给出相间共存的Gibbs集成技术从未推广到此类系统。在这项工作中,我们关注两个弱无序的孔可以应用改进的吉布斯整体蒙特卡罗技术。其中一个孔的几何形状是波浪形的,而第二个孔是圆柱形的,但具有化学变化,可引起壁电势的调制。在第一种情况下,相几乎没有变化观察到该图,而第二次报告了强烈的修改。

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