Memory control of ice growth during non-equilibrium freezing of water
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
Journal Info
The Journal of Chemical Physics
American Institute of Physics
Authors (4)
Abhigyan Hazarika
Center for Condensed Matter Theory, Department of Physics, Indian Institute of Science 1 , Bangalore, Karnataka,
Sudeep N. Punnathanam
Department of Chemical Engineering, Indian Institute of Science 2 , Bangalore, Karnataka,
Biman Bagchi
Solid State and Structural Chemistry Unit Indian Institute of Science , Bengaluru 560012,
Prabal K. Maiti
Centre for Condensed Matter Theory