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How Properties of Solid Surfaces Modulate the Nucleation of Gas Hydrate

机译:固体表面的性质如何调节气体水合物的形核

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摘要

Molecular dynamics simulations were performed for CO2 dissolved in water near silica surfaces to investigate how the hydrophilicity and crystallinity of solid surfaces modulate the local structure of adjacent molecules and the nucleation of CO2 hydrates. Our simulations reveal that the hydrophilicity of solid surfaces can change the local structure of water molecules and gas distribution near liquid-solid interfaces, and thus alter the mechanism and dynamics of gas hydrate nucleation. Interestingly, we find that hydrate nucleation tends to occur more easily on relatively less hydrophilic surfaces. Different from surface hydrophilicity, surface crystallinity shows a weak effect on the local structure of adjacent water molecules and on gas hydrate nucleation. At the initial stage of gas hydrate growth, however, the structuring of molecules induced by crystalline surfaces are more ordered than that induced by amorphous solid surfaces.
机译:对溶解在二氧化硅表面附近的水中的CO2进行了分子动力学模拟,以研究固体表面的亲水性和结晶度如何调节相邻分子的局部结构以及CO2水合物的成核作用。我们的模拟表明,固体表面的亲水性可以改变水分子的局部结构和液-固界面附近的气体分布,从而改变气体水合物成核的机理和动力学。有趣的是,我们发现水合物成核倾向于在相对较少的亲水性表面上更容易发生。与表面亲水性不同,表面结晶度对相邻水分子的局部结构和气体水合物成核作用影响较小。然而,在天然气水合物生长的初始阶段,由结晶表面诱导的分子结构比由无定形固体表面诱导的分子结构更有序。

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