Pressure-induced localisation of the hydrogen-bond network in KOH-VI
Depositor | dc.contributor | Hermann, A | |
Funder | dc.contributor.other | EPSRC - Engineering and Physical Sciences Research Council | en_UK |
Funder | dc.contributor.other | STFC - Science and Technology Facilities Council | en_UK |
Spatial Coverage | dc.coverage.spatial | UK | en |
Spatial Coverage | dc.coverage.spatial | UNITED KINGDOM | en |
Data Creator | dc.creator | Hermann, Andreas | |
Date Accessioned | dc.date.accessioned | 2015-12-21T11:21:33Z | |
Date Available | dc.date.available | 2015-12-21T11:21:33Z | |
Citation | dc.identifier.citation | University of Edinburgh. School of Physics and Astronomy. Institute of Condensed Matter and Complex Systems.. (2015). Pressure-induced localisation of the hydrogen-bond network in KOH-VI, [dataset]. https://doi.org/10.7488/ds/392. | en |
Persistent Identifier | dc.identifier.uri | https://hdl.handle.net/10283/966 | |
Persistent Identifier | dc.identifier.uri | https://doi.org/10.7488/ds/392 | |
Dataset Description (abstract) | dc.description.abstract | Using a combination of ab initio crystal structure prediction and neutron diffraction techniques, we have solved the full structure of KOH-VI at 7 GPa. Rather than being orthorhombic and proton-ordered as had previously be proposed we find that this high-pressure phase of potassium hydroxide is tetragonal (space group I4/mmm) and proton disordered. It has an unusual hydrogen bond topology, where the hydroxyl groups form isolated hydrogen-bonded square planar (OH)4 units. This structure is stable above 6.5 GPa and, despite being macroscopically proton-disordered, local ice rules enforce microscopic order of the hydrogen bonds. We suggest the use of this novel type of structure to study concerted proton tunneling in the solid state, while the topology of the hydrogen bond network could conceivably be exploited in data storage applications based solely on the manipulations of hydrogen bonds. The unusual localisation of the hydrogen bond network under applied pressure is found to be favored by a more compact packing of the constituents in a distorted cesium chloride lattice. | en_UK |
Language | dc.language.iso | eng | en_UK |
Publisher | dc.publisher | University of Edinburgh. School of Physics and Astronomy. Institute of Condensed Matter and Complex Systems. | en_UK |
Relation (Is Referenced By) | dc.relation.isreferencedby | https://doi.org/10.1063/1.4938260 | en_UK |
Rights | dc.rights | Creative Commons Attribution 4.0 International Public License | en |
Subject Classification | dc.subject.classification | Physical Sciences::Chemical Physics | en_UK |
Title | dc.title | Pressure-induced localisation of the hydrogen-bond network in KOH-VI | en_UK |
Type | dc.type | dataset | en_UK |
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Computational Materials Physics
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Extreme Conditions Physics
how materials react and change when being subjected to extremes of pressure, temperature etc