Dynamical Heterogeneity in Supercooled Water and its Spectroscopic Fingerprints
arXiv:2506.24055 · doi:10.1063/5.0288343
Abstract
A growing body of theoretical and experimental evidence strongly supports the existence of a second liquid-liquid critical point (LLCP) in deeply supercooled water leading to the co-existence of two phases: a high-and low-density liquid (HDL and LDL). While the thermodynamics associated with this putative LLCP has been well characterised through numerical simulations, the dynamical properties of these two phases close to the critical point remain much less understood. In this work, we investigate their dynamical and spectroscopic features using machine-learning interatomic potentials (MLIPs). Dynamical analyses using the van-Hove correlation function, reveal that LDL exhibits very sluggish and heterogeneous molecular mobility, in contrast to the faster and more homogeneous dynamics of HDL. Infrared absorption (IR) spectra further show clear vibrational distinctions between LDL and HDL, in particular in the far IR region between 400 - 1000 cm-1. Together, these findings provide new dynamical fingerprints that clarify the microscopic behavior of supercooled water and offer valuable guidance for experimental efforts aimed at detecting the long-sought liquid-liquid transition.
References in corpus (12)
- Canonical sampling through velocity-rescaling
- DeePMD-kit v2: A software package for Deep Potential models
- Ab initio theory and modeling of water
- The van Hove distribution function for Brownian hard spheres: dynamical test particle theory and computer simulations for bulk dynamics
- Liquid-liquid transition in water from first principles
- On the Consistency of Approximate Quantum Dynamics Simulation Methods for Vibrational Spectra in the Condensed Phase
- Role of dipolar correlations in the IR spectra of water and ice
- The Collective Burst Mechanism of Angular Jumps in Liquid Water
- Frequency dependence of specific heat in supercooled liquid water and emergence of correlated dynamics
- Unraveling the dynamic slowdown in supercooled water: The role of dynamic disorder in jump motions
- Glassy Dynamics from First-Principles Simulations
- The interplay between liquid-liquid and ferroelectric phase transitions in supercooled water