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首页> 外文期刊>Applied Surface Science >Molecular dynamics simulation of a water nano-droplet on graphene oxide surface at high temperature: Evaporation or spreading?
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Molecular dynamics simulation of a water nano-droplet on graphene oxide surface at high temperature: Evaporation or spreading?

机译:高温下氧化石墨烯表面水纳米液滴的分子动力学模拟:蒸发还是扩散?

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In this work, the behavior of a water nano-droplet on hydrophilic graphene oxide (GO) is studied at high temperatures using molecular dynamics simulation. The results showed that, with increasing temperature, spreading would overcome the evaporation of water molecules on the surface of GO. At high temperatures, the regime changes from partial to total wetting. After the spreading is complete and the surface is completely covered by water, evaporation of water occurs more rapidly. Simulation results revealed that as the system temperature rises, the number of hydrogen bonds between water molecules decreases. The water molecules reorient to the GO surface as the temperature increases and the number of possible H-bonds inside the bulk of the droplet decreases. However, the formation of H-bonds between water molecules and GO increases with temperature. The results obtained in terms of the contact angle and the density of the water molecules on the surface of the GO revealed that at different temperatures more water molecules spread on the surface of GO during simulation time. Increasing the temperature leads to increase in the number of evaporated water molecules from the surface of GO. Investigations of the dipolar momentum of water molecules in different layers of GO surface showed that water molecules in the initial layers tend to approach the surface with hydrogen atoms.
机译:在这项工作中,使用分子动力学模拟研究了纳米水在亲水性氧化石墨烯(GO)上的行为。结果表明,随着温度的升高,扩散将克服GO表面水分子的蒸发。在高温下,状态从部分润湿变为完全润湿。铺展完成且表面完全被水覆盖后,水的蒸发会更快发生。仿真结果表明,随着系统温度的升高,水分子之间的氢键数量减少。随着温度的升高,水分子重新定向到GO表面,而液滴内部可能的H键数量减少。但是,水分子和GO之间的H键形成随温度增加而增加。根据接触角和GO表面上水分子的密度获得的结果表明,在不同的温度下,更多的水分子在模拟时间内散布在GO表面上。温度升高导致GO表面蒸发的水分子数量增加。对GO表面不同层中水分子的偶极动量的研究表明,初始层中的水分子趋于通过氢原子接近表面。

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