Memory control of ice growth during non-equilibrium freezing of water

A Abhigyan Hazarika (Center for Condensed Matter Theory, Department of Physics, Indian Institute of Science 1 , Bangalore, Karnataka,) S Sudeep N. Punnathanam (Department of Chemical Engineering, Indian Institute of Science 2 , Bangalore, Karnataka,) B Biman Bagchi (Solid State and Structural Chemistry Unit Indian Institute of Science , Bengaluru 560012,) P Prabal K. Maiti (Centre for Condensed Matter Theory)

Abstract

Freezing of supercooled water is a classic non-equilibrium problem, yet the influence of thermal history on crystallization remains unclear. Using molecular dynamics simulations with the TIP4P/Ice model, we investigate how the initial temperature Ti shapes freezing following rapid quenching to 250 K. By monitoring the evolution of hydrogen-bonded ring structures, we find a non-monotonic dependence of the freezing time tF on Ti, with the slowest crystallization occurring near 300 K. Remarkably, this means that initially hotter water can freeze faster than cooler water, a molecular-scale analogue of the Mpemba effect. A non-stationary generalized Langevin equation framework shows that two-time memory kernels retain information about the system’s thermal past, directly influencing crystallization dynamics. Structural analysis further reveals that five-membered rings act as kinetic traps, while correlations among ring types regulate the accessibility of ice-like motifs. These results uncover a molecular origin of memory-driven freezing and establish structural memory as a key driver of non-equilibrium phase transitions.

Article Details

Volume / Issue Vol. 164, Issue 21
Published June 07, 2026
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 (4)

A

Abhigyan Hazarika

Center for Condensed Matter Theory, Department of Physics, Indian Institute of Science 1 , Bangalore, Karnataka,

S

Sudeep N. Punnathanam

Department of Chemical Engineering, Indian Institute of Science 2 , Bangalore, Karnataka,

B

Biman Bagchi

Solid State and Structural Chemistry Unit Indian Institute of Science , Bengaluru 560012,

P

Prabal K. Maiti

Centre for Condensed Matter Theory