Comparing the Mechanical and Thermodynamic Definitions of Pressure in Ice Nucleation

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Main Authors: de Hijes, Pablo Montero, Shi, Kaihang, Vega, Carlos, Dellago, Christoph
Format: Preprint
Published: 2025
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author de Hijes, Pablo Montero
Shi, Kaihang
Vega, Carlos
Dellago, Christoph
author_facet de Hijes, Pablo Montero
Shi, Kaihang
Vega, Carlos
Dellago, Christoph
contents Crystal nucleation studies using hard-sphere and Lennard-Jones models have shown that the pressure within the nucleus is lower than that in the surrounding liquid. Here, we use the mechanical route to obtain it for an ice nucleus in supercooled water (TIP4P/Ice) at 1 bar and 247 K. From this (mechanical) pressure, we obtain the interfacial stress using a thermodynamic definition consistent with mechanical arguments. This pressure is compared with that of bulk ice at equal chemical potential (thermodynamic pressure), and the interfacial stress with the interfacial free energy. Furthermore, we investigate these properties on the basal plane. We find that, unlike in hard-sphere and Lennard-Jones systems, mechanical and thermodynamic pressures agree for the nucleus, and the interfacial stress and free energy are comparable. Yet the basal interface displays an interfacial stress nearly twice its interfacial free energy, suggesting that this agreement may be system dependent, underscoring the limitations of mechanical routes to solid-liquid interfacial free energies.
format Preprint
id arxiv_https___arxiv_org_abs_2511_20129
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Comparing the Mechanical and Thermodynamic Definitions of Pressure in Ice Nucleation
de Hijes, Pablo Montero
Shi, Kaihang
Vega, Carlos
Dellago, Christoph
Soft Condensed Matter
Chemical Physics
Crystal nucleation studies using hard-sphere and Lennard-Jones models have shown that the pressure within the nucleus is lower than that in the surrounding liquid. Here, we use the mechanical route to obtain it for an ice nucleus in supercooled water (TIP4P/Ice) at 1 bar and 247 K. From this (mechanical) pressure, we obtain the interfacial stress using a thermodynamic definition consistent with mechanical arguments. This pressure is compared with that of bulk ice at equal chemical potential (thermodynamic pressure), and the interfacial stress with the interfacial free energy. Furthermore, we investigate these properties on the basal plane. We find that, unlike in hard-sphere and Lennard-Jones systems, mechanical and thermodynamic pressures agree for the nucleus, and the interfacial stress and free energy are comparable. Yet the basal interface displays an interfacial stress nearly twice its interfacial free energy, suggesting that this agreement may be system dependent, underscoring the limitations of mechanical routes to solid-liquid interfacial free energies.
title Comparing the Mechanical and Thermodynamic Definitions of Pressure in Ice Nucleation
topic Soft Condensed Matter
Chemical Physics
url https://arxiv.org/abs/2511.20129