| 注册
首页|期刊导航|高压物理学报|准等熵加载下高压液态水平移-旋转解耦的动力学特性

准等熵加载下高压液态水平移-旋转解耦的动力学特性

DENG Changhao CHEN Bo DAI Jiayu

高压物理学报2026,Vol.40Issue(1):67-76,10.
高压物理学报2026,Vol.40Issue(1):67-76,10.DOI:10.11858/gywlxb.20251222

准等熵加载下高压液态水平移-旋转解耦的动力学特性

Translational-Rotational Decoupling Dynamics of High-Pressure Liquid Water under Quasi-Isentropic Compression

DENG Changhao 1CHEN Bo 2DAI Jiayu2

作者信息

  • 1. College of Science,National University of Defense Technology,Changsha 410073,Hunan,China||Hunan Key Laboratory of Extreme Matter and Applications,National University of Defense Technology,Changsha 410073,Hunan,China
  • 2. College of Science,National University of Defense Technology,Changsha 410073,Hunan,China||Hunan Key Laboratory of Extreme Matter and Applications,National University of Defense Technology,Changsha 410073,Hunan,China||Hunan Research Center of the Basic Discipline for Physical States,National University of Defense Technology,Changsha 410073,Hunan,China
  • 折叠

摘要

Abstract

The ubiquitous presence of water,from Earth and planetary bodies to interstellar space,renders its phase behavior across an extensive thermodynamic range fundamental to understanding key scientific phenomena such as biochemical reactions,climate dynamics,and planetary evolution.Nevertheless,although liquid water exhibits distinct anomalous behaviors under extreme pressure,research has been hampered by experimental limitations and computational complexity,resulting in scarce atomic-scale data and hindered understanding of its microscopic mechanisms.To address this,our study employed a deep learning interaction model trained on high-precision ab initio data.Employing molecular dynamics simulations,we compressed liquid water isentropically to tens of thousands of atmospheres.Systematic analysis of its structural and dynamic properties revealed that elevated pressure significantly disrupts the inherent tetrahedral local coordination of water molecules,enhancing their rotational mobility.Conversely,translational mobility is severely suppressed in this highly condensed state.The mean squared displacement of water molecules under high pressure exhibits a characteristic three-stage behavior which is typical of glassy systems:ballistic transport,a plateau,and diffusion.Macroscopically,this reduced translational mobility manifests as a substantial increase in shear viscosity.A critical finding is that,unlike supercooled water under ambient pressure where translational and rotational motions are strongly coupled,liquid water under dynamic high pressure exhibits an intrinsic decoupling of these motions.The insights from this work are expected to offer significant microscopic understanding for crucial scientific questions,including the response of materials under dynamic loading and the solidification of metastable liquids.

关键词

液态水/分子动力学模拟/过压亚稳态/微观结构/动力学性质

Key words

liquid water/molecular dynamics simulation/over driven metastability/microscopic structure/dynamical property

分类

数理科学

引用本文复制引用

DENG Changhao,CHEN Bo,DAI Jiayu..准等熵加载下高压液态水平移-旋转解耦的动力学特性[J].高压物理学报,2026,40(1):67-76,10.

基金项目

国家自然科学基金(12534013) (12534013)

湖南省科技创新项目(2025ZYJ001,2021RC4026) (2025ZYJ001,2021RC4026)

高压物理学报

1000-5773

访问量0
|
下载量0
段落导航相关论文