Robustness of classical nucleation theory to chemical heterogeneity of crystal nucleating substrates
arXiv:2510.01420 · doi:10.1021/acs.cgd.5c01399
Abstract
Heterogeneous nucleation is a process wherein extrinsic impurities facilitate freezing by lowering nucleation barriers and constitutes the dominant mechanism for crystallization in most systems. Classical nucleation theory (\textsc{Cnt}) has been remarkably successful in predicting the kinetics of heterogeneous nucleation, even on chemically and topographically non-uniform surfaces, despite its reliance on several restrictive assumptions, such as the idealized spherical-cap geometry of the crystalline nuclei. Here, we employ molecular dynamics simulations and jumpy forward flux sampling to investigate the kinetics and mechanism of heterogeneous crystal nucleation in a model atomic liquid. We examine both a chemically uniform, weakly attractive liquiphilic surface and a checkerboard surface comprised of alternating liquiphilic and liquiphobic patches. We find the nucleation rate to retain its canonical temperature dependence predicted by \textsc{Cnt} in both systems. Moreover, the contact angles of crystalline nuclei exhibit negligible dependence on nucleus size and temperature. On the checkerboard surface, nuclei maintain a fixed contact angle through pinning at patch boundaries and vertical growth into the bulk. These findings offer insights into the robustness of \textsc{Cnt} in experimental scenarios, where nucleating surfaces often feature active hotspots surrounded by inert or liquiphobic domains.
12 pages, 13 figures, 6 tables
References in corpus (8)
- Accurate determination of crystal structures based on averaged local bond order parameters
- Ice Nucleation on Carbon Surface Supports the Classical Theory for Heterogeneous Nucleation
- Ice Formation on Kaolinite: Insights from Molecular Dynamics Simulations
- Studying Rare Events using Forward-Flux Sampling: Recent Breakthroughs and Future Outlook
- How to Quantify and Avoid Finite Size Effects in Computational Studies of Crystal Nucleation: The Case of Heterogeneous Ice Nucleation
- Role of Nanoscale Interfacial Proximity in Contact Freezing in Water
- How to quantify and avoid finite size effects in computational studies of crystal nucleation: The case of homogeneous crystal nucleation
- The Impact of Hydration Shell Inclusion and Chain Exclusion in the Efficacy of Reaction Coordinates for Homogeneous and Heterogeneous Ice Nucleation