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Phase transition kinetics of superionic H2O ice phases revealed by Megahertz X-ray free-electron laser-heating experiments.

Authors :
Husband, R. J.
Liermann, H. P.
McHardy, J. D.
McWilliams, R. S.
Goncharov, A. F.
Prakapenka, V. B.
Edmund, E.
Chariton, S.
Konôpková, Z.
Strohm, C.
Sanchez-Valle, C.
Frost, M.
Andriambariarijaona, L.
Appel, K.
Baehtz, C.
Ball, O. B.
Briggs, R.
Buchen, J.
Cerantola, V.
Choi, J.
Source :
Nature Communications; 9/23/2024, Vol. 15 Issue 1, p1-13, 13p
Publication Year :
2024

Abstract

H<subscript>2</subscript>O transforms to two forms of superionic (SI) ice at high pressures and temperatures, which contain highly mobile protons within a solid oxygen sublattice. Yet the stability field of both phases remains debated. Here, we present the results of an ultrafast X-ray heating study utilizing MHz pulse trains produced by the European X-ray Free Electron Laser to create high temperature states of H<subscript>2</subscript>O, which were probed using X-ray diffraction during dynamic cooling. We confirm an isostructural transition during heating in the 26-69 GPa range, consistent with the formation of SI-bcc. In contrast to prior work, SI-fcc was observed exclusively above ~50 GPa, despite evidence of melting at lower pressures. The absence of SI-fcc in lower pressure runs is attributed to short heating timescales and the pressure-temperature path induced by the pump-probe heating scheme in which H<subscript>2</subscript>O was heated above its melting temperature before the observation of quenched crystalline states, based on the earlier theoretical prediction that SI-bcc nucleates more readily from the fluid than SI-fcc. Our results may have implications for the stability of SI phases in ice-rich planets, for example during dynamic freezing, where the preferential crystallization of SI-bcc may result in distinct physical properties across mantle ice layers. The authors perform heating experiments using femtosecond X-ray free electron laser pulses to explore the phase stability of superionic H<subscript>2</subscript>O. The absence of a face-centered cubic phase below 50 GPa, where superionic ice forms from the melt, is attributed to the short heating time and may help understanding the stability of superionic phases in ice-rich planets. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20411723
Volume :
15
Issue :
1
Database :
Complementary Index
Journal :
Nature Communications
Publication Type :
Academic Journal
Accession number :
179814515
Full Text :
https://doi.org/10.1038/s41467-024-52505-0