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Simulation of gas adsorption on a surface and in slit pores with grand canonical and canonical kinetic Monte Carlo methods

机译:用大正则和正则动力学蒙特卡洛方法模拟表面和缝隙中气体的吸附

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摘要

We present for the first time in the literature a new scheme of kinetic Monte Carlo method applied on a grand canonical ensemble, which we call hereafter GC-kMC. It was shown recently that the kinetic Monte Carlo (kMC) scheme is a very effective tool for the analysis of equilibrium systems. It had been applied in a canonical ensemble to describe vapor-liquid equilibrium of argon over a wide range of temperatures, gas adsorption on a graphite open surface and in graphitic slit pores. However, in spite of the conformity of canonical and grand canonical ensembles, the latter is more relevant in the correct description of open systems; for example, the hysteresis loop observed in adsorption of gases in pores under sub-critical conditions can only be described with a grand canonical ensemble. Therefore, the present paper is aimed at an extension of the kMC to open systems. The developed GC-kMC was proved to be consistent with the results obtained with the canonical kMC (C-kMC) for argon adsorption on a graphite surface at 77 K and in graphitic slit pores at 87.3 K. We showed that in slit micropores the hexagonal packing in the layers adjacent to the pore walls is observed at high loadings even at temperatures above the triple point of the bulk phase. The potential and applicability of the GC-kMC are further shown with the correct description of the heat of adsorption and the pressure tensor of the adsorbed phase.
机译:我们在文献中首次提出了一种适用于大规范集合的动力学蒙特卡罗方法的新方案,以下将其称为GC-kMC。最近表明,动力学蒙特卡洛(kMC)方案是用于平衡系统分析的非常有效的工具。它已被用于规范的集合中,以描述在宽温度范围内氩的气液平衡,气体在石墨开放表面和石墨狭缝孔中的吸附。然而,尽管规范和大正则合奏是一致的,但后者在正确描述开放系统时更有意义。例如,在亚临界条件下吸附在孔中的气体中观察到的磁滞回线只能用一个典型的整体来描述。因此,本文旨在将kMC扩展到开放系统。事实证明,所开发的GC-kMC与标准kMC(C-kMC)的氩气吸附在77 K的石墨表面和87.3 K的石墨狭缝孔中的结果相符。我们表明,在狭缝微孔中,六方晶即使在高于本体相的三相点的温度下,也可以在高载荷下观察到与孔壁相邻层的堆积。通过正确描述吸附热和吸附相的压力张量,进一步显示了GC-kMC的潜力和适用性。

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