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Abstract H2O 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 H2O, 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 H2O 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.more » « less
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Goncharov, Alexander_F; Chen, Huawei; Batyrev, Iskander_G; Bykov, Maxim; Brüning, Lukas; Bykova, Elena; Kovalev, Valentin; Mahmood, Mohammad_F; Mezouar, Mohamed; Garbarino, Gaston; et al (, Physical Review B)
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Goncharov, Alexander F; Kuang, Huiyao; Tse, John S; Edmund, Eric; Bykov, Maxim; Bykova, Elena; Chariton, Stella; Prakapenka, Vitali B; Fedotenko, Timofey; Giordano, Nico; et al (, Physics of the Earth and Planetary Interiors)
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