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Anomalous transport in molecularly confined spaces

机译:在分子密闭空间中的反常运输

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摘要

We develop a novel theory to predict the density dependence of the diffusivity of simple fluids in a molecularly sized nanopore with diffusely reflecting walls, incorporating nearest neighbor intermolecular interactions within the framework of the recent oscillator model of low density transport arising from this laboratory. It is shown that when the pore width is about two molecular diameters, at sufficiently high densities these interactions lead to a repulsive inner core, as a result of which the diffusing molecules undergo more frequent reflections at the wall. This leads to a reduction in diffusivity with increase in density, which is consistent with molecular dynamics simulation results, and contrasts with the behavior in larger pores where the transport coefficient has previously been shown to increase with increase in density due to viscouslike intermolecular interactions. At low densities the behavior is opposite, with the inner core becoming more attractive with increase in density, which can lead to an increase in diffusivity. The theory consistently explains molecular dynamics simulation results when the inhomogeneous pair distribution function of moving particles in the pore is axially periodic, suggesting concerted motion of neighboring molecules. It is also shown that a potential of mean force concept is inadequate for describing the influence of intermolecular interactions on transport. (C) 2007 American Institute of Physics.
机译:我们开发了一种新颖的理论来预测简单流体在具有扩散反射壁的分子大小的纳米孔中的扩散率的密度依赖性,在该实验室引起的低密度传输的最新振荡器模型的框架内纳入了最近邻的分子间相互作用。结果表明,当孔的宽度约为两个分子的直径时,在足够高的密度下,这些相互作用会导致排斥的内芯,结果,扩散的分子在壁上会发生更频繁的反射。这导致扩散系数随密度的增加而降低,这与分子动力学模拟结果一致,并且与较大孔的行为相反,在较大孔中,由于粘性分子间相互作用,传输系数随密度的增加而增加。在低密度时,其行为是相反的,随着密度的增加,内核变得更具吸引力,这可能导致扩散率的增加。该理论始终如一地解释了当孔隙中运动粒子的不均匀对分布函数呈轴向周期性时,表明相邻分子协调运动的分子动力学模拟结果。还表明,平均力概念的潜力不足以描述分子间相互作用对运输的影响。 (C)2007美国物理研究所。

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    Bhatia, S. K.; Nicholson, D.;

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  • 年度 2007
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  • 正文语种 eng
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