Jurong Zhang, Hanyu Liu, Changfeng Chen, Yanming Ma. Sequestration of helium and xenon via iron-halide compounds in early Earth[J]. Matter and Radiation at Extremes, 2024, 9(3): 037403

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- Matter and Radiation at Extremes
- Vol. 9, Issue 3, 037403 (2024)

Fig. 1. (a)–(c) Ternary phase diagrams of the Fe–F–He, Fe–F–Xe, and Fe–Cl–Xe systems at selected pressures and 0 K. Five thermodynamically stable ternary compounds have been identified. (d) Composition–pressure phase diagram of the five ternary compounds over a wide range of pressure and at 0 K.

Fig. 2. Crystal structures of stable ternary compounds: (a) Fm -3m -FeF2He; (b) P 63/m -FeF3He; (c) P 21/m -FeF2Xe; (d) Pmmn -FeF3Xe; (e) P 63/mmc -FeCl3Xe. The lattice parameters of these compounds are given in Table S3 (supplementary material ).

Fig. 3. Pressure–temperature (P –T ) phase diagrams of the Fe–F–He and Fe–X–Xe (X = F, Cl) compounds FeF2He (a), FeF3He (b), FeF2Xe (c), FeF3Xe (d), and FeCl3Xe (e). The lines connecting black squares indicate phase boundaries. Green circles, blue triangles, and red diamonds represent the solid, sublattice melting and liquid phases, respectively, dividing P –T space into the same-color shaded regions for these distinct states of matter. The geotherm of the present Earth is indicated by the thick orange line.

Fig. 4. (a)–(c) Mean-square displacements (MSDs) of atoms in P 63/m -FeF3He from AIMD simulations: (a) there is no atomic diffusion at 1500 K and 52 GPa in the solid phase; (b) He atoms are diffusive at 2000 K and 57 GPa in the sublattice melting phase; (c) all atoms become diffusive at 3000 K and 65 GPa in the liquid phase. (d)–(f) Trajectories showing the corresponding real-space atomic displacements over the simulation time span.

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