paper

Search for high-pressure phases of yttrium via a data assimilation approach

arXiv:2605.28171

Abstract

We investigate the distorted face-centered-cubic (dfcc) phase of yttrium (Y) using a data-assimilation-based structure search that combines high-resolution powder x-ray diffraction (XRD) data with machine-learning interatomic potentials. By exploring supercells containing up to 128 atoms, we identify three low-enthalpy phases: the previously reported structure and two additional structures, and . No data-assimilation-derived structure relaxes to the previously proposed phase. Phonon calculations show that , , and are dynamically stable, whereas exhibits imaginary modes near the point, indicating dynamical instability. Enthalpy calculations using both PBE and rSCAN place the four candidate structures within about 10 meV/atom, indicating a complex energy landscape with multiple competing minima, although is consistently highest in enthalpy and rSCAN favors throughout the dfcc pressure range. Rietveld refinements of the powder XRD profile at 60 GPa further narrow the viable structural models to and , both of which reproduce the experimental data better than and . Taken together with the energetic ordering and dynamical stability, these results identify as the most plausible structure of the dfcc phase of Y, with remaining a close competing candidate, particularly toward the high-pressure side of the dfcc region.

11 pages, 5 figures