APS Logo

Liquid-liquid Phase Transition in Supercooled H<sub>2</sub>O and D<sub>2</sub>O: A Path-Integral Computer Simulation Study

ORAL

Abstract

We perform path-integral molecular dynamics (PIMD) and classical MD simulations of H2O and D2O using the q-TIP4P/F water model over a wide range of temperatures and pressures. The density ρ(T), isothermal compressibility κT(T), and self-diffusion coefficients D(T) of H2O and D2O are in excellent agreement with available experimental data; the isobaric heat capacity CP(T) obtained from PIMD and MD simulations agree qualitatively well with the experiments. Some of these thermodynamic properties exhibit anomalous maxima upon isobaric cooling, consistent with the recent experiments and with the possibility that H2O and D2O exhibit a liquid-liquid critical point (LLCP) at low temperatures and positive pressures. The data from PIMD/MD for H2O and D2O can be fitted remarkably well using the Two-State-Equation-of-State (TSEOS). Using the TSEOS we find that the differences in the LLCP location from PIMD and MD simulations of H2O and D2O suggest that nuclear quantum effects play an important role in the thermodynamics of water around the LLCP. Overall, our results strongly support the LLPT scenario to explain water anomalous behavior, independently of the fundamental differences between classical MD and PIMD techniques.

Publication: Ali Eltareb, Gustavo E. Lopez, Nicolas Giovambattista. (2021). Liquid-liquid Phase Transition in Supercooled H2O and D2O: A Path-Integral Computer Simulation Study. Manuscript submitted for publication.

Presenters

  • Ali H Eltareb

    The Graduate Center, City University of

Authors

  • Ali H Eltareb

    The Graduate Center, City University of