Anomalies and Local Structure of Liquid Water from Boiling to the Supercooled Regime as Predicted by the Many-Body MB-pol Model

Аномалии и локальная структура жидкой воды от кипения до переохлажденного состояния согласно предсказаниям многотельной модели MB-pol
Kelly M. Hunter, Francesco Paesani, Athanassios Z. Panagiotopoulos, Pablo G. Debenedetti, Thomas E. Gartner, Eleftherios Lambros, Alessandro Caruso, Marc Riera, Gregory R. Medders
2022-04-18

MB-pol modelisobaric heat capacity maximum (~223 K)isothermal compressibility maximum (~223 K)liquid density minimum (~208 K)local tetrahedral arrangementmany-body MB-polmolecular dynamics simulationssupercooled liquid watertwo donor two acceptor hydrogen-bonding topologywater no man's land
For the past 50 years, researchers have sought molecular models that can accurately reproduce water's microscopic structure and thermophysical properties across broad ranges of its complex phase diagram. Herein, molecular dynamics simulations with the many-body MB-pol model are performed to monitor the thermodynamic response functions and local structure of liquid water from the boiling point down to deeply supercooled temperatures at ambient pressure. The isothermal compressibility and isobaric heat capacity show maxima near 223 K, in excellent agreement with recent experiments, and the liquid density exhibits a minimum at ∼208 K. A local tetrahedral arrangement, where each water molecule accepts and donates two hydrogen bonds, is found to be the most probable hydrogen-bonding topology at all temperatures. This work suggests that MB-pol may provide predictive capability for studies of liquid water's physical properties across broad ranges of thermodynamic states, including the so-called water's "no man's land" which is difficult to probe experimentally.
1
At all temperatures studied (boiling to deeply supercooled at ambient pressure), the most probable hydrogen-bonding topology is a local tetrahedral arrangement with each molecule donating and accepting two hydrogen bonds.
2
MB-pol demonstrates potential predictive capability for liquid water properties across wide thermodynamic ranges, including experimentally inaccessible 'no man's land'.
3
MB-pol predicts an isobaric heat capacity maximum near 223 K, in excellent agreement with recent experimental observations.
4
MD simulations with the many-body MB-pol model reproduce water's isothermal compressibility maximum near 223 K, matching recent experiments.
5
The liquid water density predicted by MB-pol exhibits a minimum at approximately 208 K.

Liquid water across temperatures from boiling to deeply supercooled conditions at ambient pressure as represented by the many-body MB-pol molecular model

Thermodynamic response functions (isothermal compressibility, isobaric heat capacity), density anomalies, and local hydrogen-bonding/tetrahedral structure/topologies predicted by the MB-pol model across that temperature range

Publication Details
Publication Date
2022-04-18
Journal
Publisher
ISSN
Cited by
88
Access Type
Author Information
Authors
Kelly M. Hunter
Francesco Paesani
Athanassios Z. Panagiotopoulos
Pablo G. Debenedetti
Thomas E. Gartner
Eleftherios Lambros
Alessandro Caruso
Marc Riera
Gregory R. Medders
Explore further
Open the scid.ai AI chat with a ready-made request: it will find papers on a similar topic and help build a literature review.
Find similar papers in the chat
Make a presentation
100%