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首页> 外文期刊>The Journal of Chemical Physics >Communication: Relationship between local structure and the stability of water in hydrophobic confinement
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Communication: Relationship between local structure and the stability of water in hydrophobic confinement

机译:通信:局部结构与疏水监禁水中稳定性的关系

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Liquid water confined between nanoscale hydrophobic objects can become metastable with respect to its vapor at nanoscale separations. While the separations are only several molecular diameters, macroscopic theories are often invoked to interpret the thermodynamics and kinetics of water under confinement. We perform detailed rate and free energy calculations via molecular simulations in order to assess the dependence of the rate of evaporation, free energy barriers, and free energy differences between confined liquid and vapor upon object separation and compare them to the relevant macroscopic theories. At small enough separations, the rate of evaporation appears to deviate significantly from the predictions of classical nucleation theory, and we attribute such deviations to changes in the structure of the confined liquid film. However, the free energy difference between the confined liquid and vapor phases agrees quantitatively with macroscopic theory, and the free energy barrier to condensation displays qualitative agreement. Overall, the present work suggests that theories attempting to capture the kinetic behavior of nanoscale systems should incorporate structural details rather than treating it as a continuum. Published by AIP Publishing.
机译:纳米级疏水物体之间限制的液体水可以相对于纳米级分离的蒸气变为稳定性。虽然分离只有几个分子直径,但经常调用宏观理论以解释监禁下的热力学和水的动力学。我们通过分子模拟进行详细的速率和自由能量计算,以评估蒸发,自由能屏障的速率,自由能量障碍和在物体分离时蒸汽之间的自由能量差异,并将它们与相关的宏观理论进行比较。在足够的分离时,蒸发速率似乎显着地偏离了经典成核理论的预测,并且我们将这种偏差归因于狭窄液体膜的结构的变化。然而,狭窄的液体和蒸汽阶段之间的自由能量差与宏观理论一起吻合,并且凝结的自由能屏障显示定性协议。总体而言,目前的工作表明,试图捕获纳米级系统的动力学行为的理论应包括结构细节,而不是将其视为连续体。通过AIP发布发布。

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