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Main Authors: Ackland, Graeme J., Pruteanu, Ciprian G., Loveday, John S., Yamashita, Keishiro
Format: Preprint
Published: 2026
Subjects:
Online Access:https://arxiv.org/abs/2605.01045
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_version_ 1866914526007394304
author Ackland, Graeme J.
Pruteanu, Ciprian G.
Loveday, John S.
Yamashita, Keishiro
author_facet Ackland, Graeme J.
Pruteanu, Ciprian G.
Loveday, John S.
Yamashita, Keishiro
contents We describe the atomic-level motions in caesium hydroxide monohydrate (CsOH$\cdot$H$_2$O), which is a chemical compound containing layers of water and hydroxide ions. At this composition, each oxygen is involved in three hydrogen bonds which, in the hexagonal structure, form a quasi-2D honeycomb lattice. While oxygen and caesium atoms form a typical crystal lattice, the dynamics of the hydrogen atoms are more complex. Here we show that the covalent and hydrogen bonds are continually interconverting, meaning that the water and hydroxyl are interconverting by proton exchange. The order-disorder transition of the water and hydroxyl proceeds by chemical reaction rather than rotation or diffusion of the molecules. A hydrogen can rotate out of the layer, leaving a vacant site in the 2D layer. Such a hydrogen vacancy can diffuse rapidly by single molecule rotation, leading to fast-ionic conduction. The proton exchange leads to a novel type of Raman activity combining stretch and exchange processes, for which we develop a theoretical model. This would manifest in a broad single peak associated with both H$_2$O and OH stretches and a low frequency peak appearing at elevated temperature.
format Preprint
id arxiv_https___arxiv_org_abs_2605_01045
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Understanding the lifetime of water with dynamic network analysis: the case of CsOH.H2O
Ackland, Graeme J.
Pruteanu, Ciprian G.
Loveday, John S.
Yamashita, Keishiro
Materials Science
We describe the atomic-level motions in caesium hydroxide monohydrate (CsOH$\cdot$H$_2$O), which is a chemical compound containing layers of water and hydroxide ions. At this composition, each oxygen is involved in three hydrogen bonds which, in the hexagonal structure, form a quasi-2D honeycomb lattice. While oxygen and caesium atoms form a typical crystal lattice, the dynamics of the hydrogen atoms are more complex. Here we show that the covalent and hydrogen bonds are continually interconverting, meaning that the water and hydroxyl are interconverting by proton exchange. The order-disorder transition of the water and hydroxyl proceeds by chemical reaction rather than rotation or diffusion of the molecules. A hydrogen can rotate out of the layer, leaving a vacant site in the 2D layer. Such a hydrogen vacancy can diffuse rapidly by single molecule rotation, leading to fast-ionic conduction. The proton exchange leads to a novel type of Raman activity combining stretch and exchange processes, for which we develop a theoretical model. This would manifest in a broad single peak associated with both H$_2$O and OH stretches and a low frequency peak appearing at elevated temperature.
title Understanding the lifetime of water with dynamic network analysis: the case of CsOH.H2O
topic Materials Science
url https://arxiv.org/abs/2605.01045