Advances in the study of supercooled water

In this review, we report recent progress in the field of supercooled water. Due to its uniqueness, water presents numerous anomalies with respect to most simple liquids, showing polyamorphism both in the liquid and in the glassy state. We first describe the thermodynamic scenarios hypothesized for...

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Detalles Bibliográficos
Autores: Gallo, Paola, Bachler, Johannes, Bove, Livia E., Böhmer, Roland, Camisasca, Gaia, Coronas, Luis E., Corti, Horacio R., Almeida Ribeiro, Ingrid de, Koning, Maurice de, Franzese, Giancarlo, Fuentes Landete, Violeta, Gainaru, Catalin, Loerting, Thomas, Montes de Oca, Joan Manuel, Poole, Peter H., Rovere, Mauro, Sciortino, Francesco, Tonauer, Christina M., Appignanesi, Gustavo A.
Tipo de recurso: artículo
Estado:Versión aceptada para publicación
Fecha de publicación:2021
País:España
Institución:Universidad de Barcelona
Repositorio:Dipòsit Digital de la UB
OAI Identifier:oai:diposit.ub.edu:2445/184946
Acceso en línea:https://hdl.handle.net/2445/184946
Access Level:acceso abierto
Palabra clave:Aigua
Termodinàmica
Dinàmica molecular
Transformacions de fase (Física estadística)
Water
Thermodynamics
Molecular dynamics
Phase transformations (Statistical physics)
Descripción
Sumario:In this review, we report recent progress in the field of supercooled water. Due to its uniqueness, water presents numerous anomalies with respect to most simple liquids, showing polyamorphism both in the liquid and in the glassy state. We first describe the thermodynamic scenarios hypothesized for the supercooled region and in particular among them the liquid-liquid critical point scenario that has so far received more experimental evidence. We then review the most recent structural indicators, the two-state model picture of water, and the importance of cooperative effects related to the fact that water is a hydrogen-bonded network liquid. We show throughout the review that water's peculiar properties come into play also when water is in solution, confined, and close to biological molecules. Concerning dynamics, upon mild supercooling water behaves as a fragile glass former following the mode coupling theory, and it turns into a strong glass former upon further cooling. Connections between the slow dynamics and the thermodynamics are discussed. The translational relaxation times of density fluctuations show in fact the fragile-to-strong crossover connected to the thermodynamics arising from the existence of two liquids. When considering also rotations, additional crossovers come to play. Mobility-viscosity decoupling is also discussed in supercooled water and aqueous solutions. Finally, the polyamorphism of glassy water is considered through experimental and simulation results both in bulk and in salty aqueous solutions. Grains and grain boundaries are also discussed.