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Molecular dynamics simulation of carbon dioxide in single-walled carbon nanotubes in the presence of water: structure and diffusion studies

机译:有水存在下单壁碳纳米管中二氧化碳的分子动力学模拟:结构和扩散研究

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摘要

We present a molecular dynamics study on the structure and diffusion of carbon dioxide in single-walled carbon nanotubes (SWCNTs) in the presence of water. We consider (10,10) and (15,15) SWCNTs of nanotube diameter 13.6 and 20.3 angstrom, respectively, with amounts of pre-adsorbed water equal to 0, 0.025, 0.1, and 0.2 g/cm(3). The density of the carbon dioxide in the SWCNTs corresponds to the maximum amount adsorbed at 300 K and 37.6 bar, as previously determined by grand canonical Monte Carlo simulation. We determine the structure of the confined fluids by calculating density distributions in the nanotube axial and radial directions, along with a second-order Legendre polynomial to elucidate their molecular orientations. The diffusion of the confined molecules is then analysed via both the overall time-dependent and space-dependent mean-square displacements in the nanotube axial direction. We find that the systems display distinct axial regions comprised of either pure carbon dioxide or water clusters that have been penetrated by CO2 molecules. The confined molecules form layered structures that strongly depend on the nanotube diameter. However for particular SWCNTs, the shape of the layered structures is not affected by the presence of pre-adsorbed water. The amount of pre-adsorbed water strongly influences the overall diffusion, while the space variation of fluid densities across the nanotubes has a relatively small effect on the space-dependent diffusion.
机译:我们提出了在水存在下单壁碳纳米管(SWCNTs)中二氧化碳的结构和扩散的分子动力学研究。我们分别考虑(10,10)和(15,15)纳米管直径分别为13.6和20.3埃的SWCNT,其预吸附水量分别为0、0.025、0.1和0.2 g / cm(3)。 SWCNT中的二氧化碳密度对应于300 K和37.6 bar时的最大吸附量,这是先前通过经典的蒙特卡洛模拟确定的。我们通过计算纳米管轴向和径向上的密度分布以及二阶勒让德多项式来阐明其分子取向,从而确定受限流体的结构。然后,通过在纳米管轴向上整体的时间相关和空间相关的均方位移来分析受限分子的扩散。我们发现系统显示出不同的轴向区域,其中包括纯二氧化碳或已被CO2分子穿透的水团簇。受限分子形成强烈依赖于纳米管直径的分层结构。但是对于特定的SWCNT,分层结构的形状不受预吸附水的存在的影响。预吸附的水量强烈影响总体扩散,而跨纳米管的流体密度的空间变化对取决于空间的扩散影响相对较小。

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