Article, 2024

Unraveling thermodynamic anomalies of water: A molecular simulation approach to probe the two-state theory with atomistic and coarse-grained water models

The Journal of Chemical Physics, ISSN 1089-7690, 0021-9606, Volume 160, 15, Page 154505, 10.1063/5.0194036

Contributors

Muthachikavil, Aswin V 0000-0001-7960-3565 [1] Sun, Gang 0000-0003-0241-0364 [2] Peng, Bao-Liang [3] Tanaka, Hajime 0000-0002-4444-1890 (Corresponding author) [4] Kontogeorgis, Georgios M 0000-0002-7128-1511 [1] Liang, Xiaodong 0000-0002-2007-546X [1]

Affiliations

  1. [1] Technical University of Denmark
  2. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD];
  3. [2] Beijing Normal University
  4. [NORA names: China; Asia, East];
  5. [3] Research Institute of Petroleum Exploration and Development
  6. [NORA names: China; Asia, East];
  7. [4] The University of Tokyo
  8. [NORA names: Japan; Asia, East; OECD]

Abstract

Thermodynamic and dynamic anomalies of water play a crucial role in supporting life on our planet. The two-state theory attributes these anomalies to a dynamic equilibrium between locally favored tetrahedral structures (LFTSs) and disordered normal liquid structures. This theory provides a straightforward, phenomenological explanation for water's unique thermodynamic and dynamic characteristics. To validate this two-state feature, it is critical to unequivocally identify these structural motifs in a dynamically fluctuating disordered liquid. In this study, we employ a recently introduced structural parameter (θavg) that characterizes the local angular order within the first coordination shell to identify these LFTSs through molecular dynamics simulations. We employ both realistic water models with a liquid-liquid critical point (LLCP) and a coarse-grained water model without an LLCP to study water's anomalies in low-pressure regions below 2 kbar. The two-state theory consistently describes water's thermodynamic anomalies in these models, both with and without an LLCP. This suggests that the anomalies predominantly result from the two-state features rather than criticality, particularly within experimentally accessible temperature-pressure regions.

Keywords

LFTS, angular order, anomalies, anomalies of water, approach, characteristics, coarse-grained water model, coordination, coordination shell, critical point, criticism, disordered liquid, dynamic anomalies, dynamic anomalies of water, dynamic characteristics, dynamic equilibrium, dynamics, dynamics simulations, equilibrium, experimentation, explanation, features, kbar, life, liquid, liquid structure, liquid-liquid critical point, low-pressure region, model, molecular dynamics simulations, molecular simulation approach, motif, normal-liquid structures, order, phenomenological explanation, planet, point, region, shell, simulation, simulation approach, structural motifs, structure, study, support life, temperature–pressure region, tetrahedral structure, theory, thermodynamic anomalies, thermodynamic anomalies of water, two-state theory, water, water anomalies, water model, water's thermodynamic anomalies

Funders

  • Japan Society for the Promotion of Science
  • European Research Council
  • European Commission
  • The Velux Foundations

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