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首页> 外文期刊>Journal of Colloid and Interface Science >The effects of energy sites on adsorption of Lennard-Jones fluids and phase transition in carbon slit pore of finite length - a computer simulation study
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The effects of energy sites on adsorption of Lennard-Jones fluids and phase transition in carbon slit pore of finite length - a computer simulation study

机译:能量位点对Lennard-Jones流体吸附和有限长度碳缝孔中相变的影响-计算机模拟研究

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A Monte Carlo simulation method is Used 10 study the effects of adsorption strength and topology of sites on adsorption of simple Lennard-Jones fluids in a carbon slit pore of finite length. Argon is used as a model adsorbate, while the adsorbent is modeled as a finite carbon slit pore whose two walls composed of three graphene layers with carbon atoms arranged in a hexagonal pattern. Impurities having well depth of interaction greater than that of carbon atom are assumed to be grafted onto the surface. Different topologies of the impurities; corner, centre, shelf and random topologies are studied. Adsorption isotherms of argon at 87.3 K are obtained for pore having widths of 1, 1.5 and 3 11111 using a Grand Canonical Monte Carlo simulation (GCMC). These results are compared with isotherms obtained for infinite pores. It is shown that the Surface heterogeneity affects significantly the overall adsorption isotherm, particularly the phase transition. Basically it shifts the onset of adsorption to lower pressure and the adsorption isotherms for these four impurity models are generally greater than that for finite pore. The positions of impurities on solid Surface also affect the shape of the adsorption isotherm and the phase transition. We have found that the impurities allocated at the centre of pore walls provide the greatest isotherm at low pressures. However when the pressure increases the impurities allocated along the edges of the graphene layers show the most significant effect on the adsorption isotherm. We have investigated the effect of surface heterogeneity on adsorption hysteresis loops of three models of impurity topology, it shows that the adsorption branches of these isotherms are different, while the desorption branches are quite close to each other. This suggests that the desorption branch is either the thermodynamic equilibrium branch or closer to it than the adsorption branch. (c) 2005 Elsevier Inc. All rights reserved.
机译:使用蒙特卡罗模拟方法10研究了有限长度的碳缝隙孔中吸附强度和位点拓扑对简单Lennard-Jones流体吸附的影响。氩被用作模型吸附物,而吸附剂被模型化为有限的碳缝孔,其两个壁由三个石墨烯层组成,碳原子以六边形排列。相互作用深度大于碳原子深度的杂质被认为已嫁接到表面上。杂质的不同拓扑;研究了角落,中心,架子和随机拓扑。使用Grand Canonical蒙特卡洛模拟(GCMC),对宽度为1、1.5和3 11111的孔获得了87.3 K的氩气吸附等温线。将这些结果与无限孔获得的等温线进行了比较。结果表明,表面异质性显着影响整体吸附等温线,特别是相变。基本上,它将吸附的开始转移到较低的压力,这四个杂质模型的吸附等温线通常大于有限孔的吸附等温线。固体表面上杂质的位置也会影响吸附等温线的形状和相变。我们发现分配在孔壁中心的杂质在低压下提供最大的等温线。然而,当压力增加时,沿石墨烯层边缘分配的杂质对吸附等温线显示出最显着的影响。我们研究了表面异质性对三种杂质拓扑模型吸附滞后回线的影响,结果表明,这些等温线的吸附分支是不同的,而解吸分支则彼此接近。这表明解吸支链是热力学平衡支链或比吸附支链更靠近它。 (c)2005 Elsevier Inc.保留所有权利。

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