Heterogeneous ice nucleation on model substrates

M M. Camarillo (Departamento de Química Física, Facultad de Ciencias Químicas, Universidad Complutense de Madrid 1 , 28040 Madrid,) J J. Oller-Iscar (Departamento de Ingeniería Química Industrial y del Medio Ambiente, Escuela Técnica Superior de Ingenieros Industriales, Universidad Politécnica de Madrid 2 , 28006 Madrid,) M M. M. Conde (Departamento de Ingeniería Química Industrial y del Medio Ambiente, Escuela Técnica Superior de Ingenieros Industriales, Universidad Politécnica de Madrid 4 , 28006 Madrid,) J J. Ramírez (Departamento de Ingeniería Química Industrial y del Medio Ambiente, Escuela Técnica Superior de Ingenieros Industriales, Universidad Politécnica de Madrid 2 , 28006 Madrid,) E E. Sanz (Departamento de Química Física, Facultad de Ciencias Químicas, Universidad Complutense de Madrid 1 , 28040 Madrid,)

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 analyze how the ice nucleating ability is affected by the substrate lattice structure and orientation. We focus on different model lattices, namely, simple cubic, body centered cubic, and face centered cubic, and assess their ability to induce ice nucleation by calculating nucleation rates. Several orientations are studied for the case of the face centered cubic lattice. Curiously, a hexagonal symmetry does not guarantee a better ice nucleating ability. By comparing the body centered 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.

Article Details

Volume / Issue Vol. 163, Issue 15
Published October 21, 2025
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (5)

M

M. Camarillo

Departamento de Química Física, Facultad de Ciencias Químicas, Universidad Complutense de Madrid 1 , 28040 Madrid,

J

J. Oller-Iscar

Departamento de Ingeniería Química Industrial y del Medio Ambiente, Escuela Técnica Superior de Ingenieros Industriales, Universidad Politécnica de Madrid 2 , 28006 Madrid,

M

M. M. Conde

Departamento de Ingeniería Química Industrial y del Medio Ambiente, Escuela Técnica Superior de Ingenieros Industriales, Universidad Politécnica de Madrid 4 , 28006 Madrid,

J

J. Ramírez

Departamento de Ingeniería Química Industrial y del Medio Ambiente, Escuela Técnica Superior de Ingenieros Industriales, Universidad Politécnica de Madrid 2 , 28006 Madrid,

E

E. Sanz

Departamento de Química Física, Facultad de Ciencias Químicas, Universidad Complutense de Madrid 1 , 28040 Madrid,