Heterogeneous ice nucleation on model substrates
arXiv:2601.05758 · doi:10.1063/5.0289506
Abstract
Ice nucleation is greatly important in areas as diverse as climate change, cryobiology, geology or food industry. Predicting the ability of a substrate to induce the nucleation of ice from supercooled water is a difficult problem. Here, we use molecular simulations to analyse how the ice nucleating ability is affected by the substrate lattice structure and orientation. We focus on different model lattices: simple cubic, body centred cubic and face centred cubic, and assess their ability to induce ice nucleation by calculating nucleation rates. Several orientations are studied for the case of the face centred cubic lattice. Curiously, a hexagonal symmetry does not guarantee a better ice nucleating ability. By comparing the body centred cubic and the cubic lattices we determined that there is a significant role of the underlying crystal plane(s) on ice nucleation. The structure of the liquid layer adjacent to the substrate reveals that more efficient nucleants induce a more structured liquid. The most efficient substrates present a strong sensitivity of their ice nucleating ability to the lattice parameters. Introducing a novel methodological approach, we use Classical Nucleation Theory to estimate the contact angle of the ice nucleus on the studied substrates from the calculated nucleation rates. The method also provides the nucleation free energy barrier height, the kinetic pre-factor and the critical cluster size. The latter is in agreement with the nucleus size obtained through a microscopic analysis of the nucleation trajectories, which supports the validity of Classical Nucleation Theory down to small critical clusters.
12 figures, 87 references
References in corpus (18)
- Accurate determination of crystal structures based on averaged local bond order parameters
- The Many Faces of Heterogeneous Ice Nucleation: Interplay Between Surface Morphology and Hydrophobicity
- Homogeneous ice nucleation evaluated for several water models
- Molecular simulations of heterogeneous ice nucleation. I. Controlling ice nucleation through surface hydrophilicity
- Ice Nucleation on Carbon Surface Supports the Classical Theory for Heterogeneous Nucleation
- Ice Formation on Kaolinite: Insights from Molecular Dynamics Simulations
- The Microscopic Features of Heterogeneous Ice Nucleation May Affect the Macroscopic Morphology of Atmospheric Ice Crystals
- Homogeneous nucleation of ice
- Interfacial Free Energy as the Key to the Pressure-Induced Deceleration of Ice Nucleation
- Heterogeneous ice nucleation on silver-iodide-like surfaces
- Molecular simulations of heterogeneous ice nucleation. II. Peeling back the layers
- What Makes a Good Descriptor for Heterogeneous Ice Nucleation on OH-Patterned Surfaces
- Effects of surface interactions on heterogeneous ice nucleation for a monatomic water model
- Why Are Alkali Halide Solid Surfaces Not Wetted By Their Own Melt?
- Homogeneous Ice Nucleation Rate in Water Droplets
- Homogeneous nucleation rate of carbon dioxide hydrate formation under experimental condition from Seeding simulations
- Effect of substrate mismatch, orientation, and flexibility on heterogeneous ice nucleation
- Can molecular simulations reliably compare homogeneous and heterogeneous ice nucleation?