Direct observation of liquid-liquid phase coexistence in deeply supercooled water using an accurate polarizable multipole model

成果类型:
Article
署名作者:
Wang, Lee-Ping; Berrens, Margaret L.; Donadio, Davide
署名单位:
University of California System; University of California Davis; United States Department of Energy (DOE); Lawrence Livermore National Laboratory
刊物名称:
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
ISSN/ISSBN:
0027-8424; 1091-6490
DOI:
10.1073/pnas.2526573123
发表日期:
2026-01-27
页码:
e2526573123
关键词:
supercooled water Critical phenomena molecular dynamics INTERFACIAL-TENSION MOLECULAR-MODEL DYNAMICS ice TRANSITION temperature simulation BEHAVIOR energy point
摘要:
Liquid water can be supercooled up to about 50 K below the melting point before undergoing homogeneous ice nucleation. Based on experimental thermodynamic observations and computer simulations, it was hypothesized that below this temperature and at pressures of several kbar, water undergoes a liquid-liquid phase transition (LLPT) and the transition line ends at a second critical point. However, challenges in experiments and simulations at such deep cooling leave doubts about the nature of the LLPT and the existence of the critical point. Here, we use molecular dynamics simulations with a highly accurate and computationally efficient polarizable water model to establish the character of the LLPT and identify the location of the second critical point. Our microsecond-long simulations provide direct evidence of a welldefined moving interface between low-density and high-density water at conditions near the phase boundary. This provides decisive proof of a first-order transition between two liquid phases with distinct free energy basins separated by a barrier, taking a major step toward resolving this long-standing debate. These results offer new perspectives on supercooled water under pressure simulated with an accurate and realistic model suitable for studies of water in confined geological and biological environments.
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