The barrier to ice nucleation in monatomic water
arXiv:1804.09956 · doi:10.1063/1.5016518
Abstract
Crystallization from a supercooled liquid initially proceeds via the formation of a small solid embryo (nucleus), which requires surmounting an activation barrier. This phenomenon is most easily studied by numerical simulation, using specialized biased-sampling techniques to overcome the limitations imposed by the rarity of nucleation events. Here, I focus on the barrier to homogeneous ice nucleation in supercooled water, as represented by the monatomic-water model, which in the bulk exhibits a complex interplay between different ice structures. I consider various protocols to identify solidlike particles on a computer, which perform well enough for the Lennard-Jones model, and compare their respective impact on the shape and height of the nucleation barrier. It turns out that the effect is stronger on the nucleus size than on the barrier height. As a by-product of the analysis, I determine the structure of the nucleation cluster, finding that the relative amount of ice phases in the cluster heavily depends on the method used for classifying solidlike particles. Moreover, the phase which is most favored during the earlier stages of crystallization may happen, depending on the nucleation coordinate adopted, to be different from the stable polymorph. Therefore, the quality of a reaction coordinate cannot be assessed simply on the basis of the barrier height obtained. I explain how this outcome is possible and why it just points out the shortcoming of collective variables appropriate to simple fluids in providing a robust method of particle classification for monatomic water.
41 pages, 15 figures
References in corpus (14)
- Accurate determination of crystal structures based on averaged local bond order parameters
- Crystal Nucleation in Liquids: Open Questions and Future Challenges in Molecular Dynamics Simulations
- Observation of the Density Minimum in Deeply Supercooled Confined Water
- Homogeneous ice nucleation evaluated for several water models
- Ice Nucleation on Carbon Surface Supports the Classical Theory for Heterogeneous Nucleation
- Systematic Improvement of Classical Nucleation Theory
- Computing stationary distributions in equilibrium and non-equilibrium systems with Forward Flux Sampling
- Crystal nucleation as the ordering of multiple order parameters
- Microscopic Mechanism and Kinetics of Ice Formation at Complex Interfaces: Zooming in on Kaolinite
- Interfacial Free Energy as the Key to the Pressure-Induced Deceleration of Ice Nucleation
- Suppression of Sub-surface Freezing in Free-Standing Thin Films of a Coarse-grained Model of Water
- Non-classical pathways of crystallization in colloidal systems
- Canonical free-energy barrier of particle and polymer cluster formation
- A fingerprint of surface-tension anisotropy in the free-energy cost of nucleation
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