Nitrogen, Earth’s most abundant atmospheric component, in the presence of water, is known to form clathrate hydrates, that are relevant to model the evolution of water-rich planets and satellites. Here, we map the high-pressure phase diagram of nitrogen hydrate up to 16 GPa at room temperature by combining neutron diffraction, Raman spectroscopy, and crystal structure prediction. Wereveal a rich sequence of structural transformations, from sI/sII clathrates to hexagonal (sH) and tetragonal (sT) phases, culminating in a previously unknown orthorhombic filled-ice structure above 1.8 GPa. This new phase cannot be indexed to any known ice frameworks and exhibits a density approximately30% lower than that of stable ice VII, pointing to distinctive water-nitrogen interactions. Our results refine the understanding of nitrogen hydrate behavior under extreme conditions and demonstrate the propensity of N2 and H2O to form stable filled-ice structures up to 16 GPa, with important implications for planetary science.

Discovery of a low-density filled-ice phase in nitrogen hydrate at high pressure / Berni, S., Espert, S., Poręba, T., Di Cataldo, S., Gaal, R., Tobie, G., Le Menn, E., Hansen, T.C., Bini, R., Bove, L.E.. - In: COMMUNICATIONS CHEMISTRY. - ISSN 2399-3669. - STAMPA. - 9:(2026), pp. 306.1-306.10. [10.1038/s42004-026-02030-6]

Discovery of a low-density filled-ice phase in nitrogen hydrate at high pressure

Berni, Selene
;
Bini, Roberto;
2026

Abstract

Nitrogen, Earth’s most abundant atmospheric component, in the presence of water, is known to form clathrate hydrates, that are relevant to model the evolution of water-rich planets and satellites. Here, we map the high-pressure phase diagram of nitrogen hydrate up to 16 GPa at room temperature by combining neutron diffraction, Raman spectroscopy, and crystal structure prediction. Wereveal a rich sequence of structural transformations, from sI/sII clathrates to hexagonal (sH) and tetragonal (sT) phases, culminating in a previously unknown orthorhombic filled-ice structure above 1.8 GPa. This new phase cannot be indexed to any known ice frameworks and exhibits a density approximately30% lower than that of stable ice VII, pointing to distinctive water-nitrogen interactions. Our results refine the understanding of nitrogen hydrate behavior under extreme conditions and demonstrate the propensity of N2 and H2O to form stable filled-ice structures up to 16 GPa, with important implications for planetary science.
2026
9
1
10
Berni, Selene; Espert, Sophie; Poręba, Tomasz; Di Cataldo, Simone; Gaal, Richard; Tobie, Gabriel; Le Menn, Erwan; Hansen, Thomas C.; Bini, Roberto; Bo...espandi
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Utilizza questo identificatore per citare o creare un link a questa risorsa: https://hdl.handle.net/2158/1491492
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