Effect of Sodium Chloride Adsorption on the Surface Premelting of Ice
arXiv:2205.14696 · doi:10.1039/D2CP02277J
Abstract
We characterise the structural properties of the quasi-liquid layer (QLL) at two low-index ice surfaces in the presence of sodium chloride (NaCl) ions by molecular dynamics simulations. We find that the presence of a high surface density of NaCl pairs changes the surface melting behaviour from step-wise to gradual melting. The ions lead to an overall increase of the thickness and the disorder of the QLL, and to a low-temperature roughening transition of the air-ice interface. The local molecular structure of the QLL is similar to that of liquid water, and the differences between the basal and primary prismatic surface are attenuated by the presence of NaCl pairs. These changes modify the crystal growth rates of different facets and the solvation environment at the surface of sea-water ice with a potential impact on light scattering and environmental chemical reactions.
9 pages, 8 figures
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Cited by in corpus (6)
- Unveiling the Face-Dependent Ice Growth Kinetics: Insights from Molecular Dynamics on the Basal and Prism Surfaces
- Is it possible to overheat ice? The activated melting of TIP4P/Ice at solid-vapor coexistence
- The Key Physics of Ice Premelting
- Impact of the sodium and calcium chlorides uptake on the interfacial behavior of ice: premelting, structure, and dynamics
- Molecular dynamics of ice-active solutions at ice-water interfaces
- Enhanced premelting at the ice-rubber interface using all-atom molecular dynamics simulation