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Hydrogen bonding and coordination in normal and supercritical water from x-ray inelastic scattering

Patrick H.-L. Sit, Christophe Bellin, Bernardo Barbiellini, D. Testemale, J. L. Hazemann, T. Buslaps, Nicola Marzari, Abhay Shukla

Research output: Journal Publications and ReviewsRGC 22 - Publication in policy or professional journal

Abstract

A direct measure of hydrogen bonding in water under conditions ranging from the normal state to the supercritical regime is derived from first-principles calculations for the Compton scattering of inelastically scattered x rays. First, we show that a measure of the number of electrons ne involved in hydrogen bonding at varying thermodynamic conditions can be directly obtained from Compton profile differences. Then, we use first-principles simulations to provide a connection between ne and the number of hydrogen bonds nHB. Our study shows that over the broad range studied, the relationship between ne and nHB is linear, allowing for a direct measure of bonding and coordination in water by coupling simulations with experiments. In particular, the transition to supercritical state is characterized by a sharp increase in the number of water monomers but also displays a significant number of residual dimers and trimers. © 2007 The American Physical Society.
Original languageEnglish
Article number245413
JournalPhysical Review B - Condensed Matter and Materials Physics
Volume76
Issue number24
DOIs
Publication statusPublished - 13 Dec 2007
Externally publishedYes

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