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Molecular dynamics simulation study of the mechanisms of water diffusion in a hydrated, amorphous polyamide

机译:水合无定形聚酰胺中水扩散机理的分子动力学模拟研究

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Atomistic, molecular dynamics simulations of water diffusion in a hydrated, amorphous polyamide have been carried out to study the effects of polymer dynamics, cross-linking, and hydrogen bonding interactions on the molecular mechanisms of diffusion. This polymer was selected as a model for the discriminating layer of FT-30 reverse osmosis membranes, used commercially for water desalination. Analysis of the configurations generated during the simulations shows that, at the relatively high water content studied, a continuous water phase is formed which permeates the polymer and consists of more than 90% of all waters of hydration. Water diffusion takes place by distinct "jump-like" movements between weakly localized sites in this continuous phase. The jump length is on average approx 3Anstrom, independent of the system studied, and is most likely defined by the local, cooperative rearrangement of water molecules. However, the jump frequency, or equivalently, the rate of water diffusion varies from system to system, and depends on polymer dynamics and cross-linking density, and more significantly, on water-water hydrogen bonding interactions.
机译:已经进行了水合无定形聚酰胺中水扩散的原子,分子动力学模拟,以研究聚合物动力学,交联和氢键相互作用对扩散分子机理的影响。选择该聚合物作为FT-30反渗透膜区分层的模型,所述FT-30反渗透膜在商业上用于水脱盐。对模拟过程中生成的构型的分析表明,在研究的相对较高的水含量下,形成了连续的水相,该水相渗透到聚合物中,并占所有水合水的90%以上。在此连续阶段中,水的扩散是通过弱定位点之间明显的“跳跃状”运动发生的。跳跃长度平均约为3埃,与所研究的系统无关,并且很可能由水分子的局部协作重排定义。然而,跳跃频率,或等效地,水的扩散速率随系统的不同而变化,并且取决于聚合物动力学和交联密度,并且更重要地取决于水-水氢键相互作用。

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