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Viscosity of Water Interfaces with Hydrophobic Nanopores: Application to Water Flow in Carbon Nanotubes

机译:疏水纳米孔水界面的粘度:碳纳米管中水流的应用

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摘要

The nanoconfinement of water results in changes in water properties and nontraditional water flow behaviors. The determination of the interfacial interactions between water and hydrophobic surfaces helps in understanding many of the nontraditional behaviors of nanoconfined water. In this study, an approach for the identification of the viscosity of water interfaces with hydrophobic nanopores as a function of the nanopore diameter and water-solid (nanopore) interactions is proposed. In this approach, water in a hydrophobic nanopore is represented as a double-phase water with two distinct viscosities: water interface and water core. First, the slip velocity to pressure gradient ratio of water flow in hydrophobic nanopores is obtained via molecular dynamics (MD) simulations. Then the water interface viscosity is determined via a pressure gradient-based bilayer water flow model. Moreover, the core viscosity and the effective viscosity of water flow in hydrophobic nanopores are derived as functions of the nanopore diameter and water-solid interactions. This approach is utilized to report the interface viscosity, core viscosity, and effective viscosity of water flow in carbon nanotubes (CNTs) as functions of the CNT diameter. Moreover, using the proposed approach, the transition from MD to continuum mechanics is revealed where the bulk water properties are recovered for large CNTs.
机译:水的纳米纯净导致水性和非传统水流量的变化。水和疏水性表面之间的界面相互作用有助于了解纳米醌水的许多非传统行为。在该研究中,提出了一种用作疏水纳米孔作为纳米孔直径和水固体(纳米孔)相互作用的疏水纳米孔的水界面粘度的方法。在这种方法中,疏水纳米孔中的水代表为具有两个不同粘度的双相水:水界面和水核。首先,通过分子动力学(MD)模拟获得疏水性纳米孔中水流动流量的滑移速度。然后通过压力梯度的双层水流模型确定水界面粘度。此外,疏水纳米孔中水流动的核心粘度和有效粘度衍生为纳米孔直径和水固相互作用。这种方法用于报告碳纳米管(CNT)中水流的界面粘度,核心粘度和有效粘度作为CNT直径的函数。此外,使用所提出的方法,揭示了从MD转换到连续力学的转变,其中散装水性质被回收大型CNT。

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