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Close packed transitions in slit-shaped pores: Density functional theory study of methane adsorption capacity in carbon

机译:狭缝状孔隙中的紧密堆积转变:碳中甲烷吸附能力的密度泛函理论研究

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An important feature of improving lattice gas models and classical isotherms is the incorporation of a pore size dependent capacity, which has hitherto been overlooked. In this paper, we develop a model for predicting the temperature dependent variation in capacity with pore size. The model is based on the analysis of a lattice gas model using a density functional theory approach at the close packed limit. Flid-fluid and solid-fluid interactions are modeled by the Lennard-Jones 12-6 potential and Steele's 10-4-3, potential respectively. The capacity of methane in a slit-shaped carbon pore is calculated from the characteristic parmeters of the unit cell, which are extracted by minimizing the grand potential of the unit cell. The capacities predicted by the proposed model are in good agreement with those obtained from grand canonical Monte Carlo simulation, for pores that can accommodate up to three adsorbed layers. Single particle and pair distributions exhibit characteristic features that correspond to the sequence of buckling and rhombic transitions that occur as the slit pore width is increased. The model provides a useful tool to model continuous variation in the microstructure of an adsorbed phase, namely buckling and rhombic transitions, with increasing pore width.
机译:改善晶格气体模型和经典等温线的一个重要特征是结合了孔径大小相关的能力,迄今为止,这种能力一直被忽略。在本文中,我们建立了一个模型来预测孔径随容量的温度依赖性变化。该模型基于在密堆积极限时使用密度泛函理论方法对晶格气体模型的分析。流动流体和固体流体相互作用分别由Lennard-Jones 12-6势和Steele的10-4-3势建模。狭缝状碳孔中的甲烷容量是根据单位电池的特征参数计算得出的,这些参数是通过将单位电池的大电位最小化而提取的。对于孔隙最多可容纳三个吸附层的孔隙,所提出的模型预测的容量与从经典蒙特卡洛模拟获得的容量非常吻合。单颗粒和成对的分布具有特征性的特征,这些特征对应于随着狭缝孔径的增加而发生的屈曲和菱形转变的顺序。该模型提供了一个有用的工具,可以对吸附相的微观结构的连续变化(即屈曲和菱形跃迁)随孔宽度的增加进行建模。

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