High-pressure structural behaviour of HoVO4: Combined XRD experiments and ab initio calculations
arXiv:1405.1889 · doi:10.1088/0953-8984/26/26/265402
Abstract
We report a high-pressure experimental and theoretical investigation of the structural properties of zircon-type HoVO4. Angle-dispersive x-ray diffraction measurements were carried out under quasi-hydrostatic and partial non-hydrostatic conditions up to 28 and 23.7 GPa, respectively. In the first case, an irreversible phase transition is found at 8.2 GPa. In the second case, the onset of the transition is detected at 4.5 GPa, a second (reversible) transition is found at 20.4 GPa, and a partial decomposition of HoVO4 was observed. The structures of the different phases have been assigned and their equations of state (EOS) determined. Experimental results have also been compared to theoretical calculations which fully agree with quasi-hydrostatic experiments. Theory also suggests the possibility of another phase transition at 32 GPa; i.e. beyond the pressure limit covered by present experiments. Furthermore, calculations show that deviatoric stresses could trigger the transition found at 20.4 GPa under non-hydrostatic conditions. The reliability of the present experimental and theoretical results is supported by the consistency between the values yielded for transition pressures and EOS parameters by the two methods.
25 pages, 7 figures, 4 tables, to appear in J. Phys. Condensed Matter
References in corpus (4)
- Pressure effects on the structural and electronic properties of ABX4 scintillating crystals
- High-pressure x-ray diffraction study of SrMoO4 and pressure-induced structural changes
- High-pressure x-ray diffraction and ab initio study of Ni2Mo3N, Pd2Mo3N, Pt2Mo3N, Co3Mo3N, and Fe3Mo3N: Two families of ultra-incompressible bimetallic interstitial nitrides
- Landau theory applied to phase transitions in calcium orthotungstate and isostructural compounds
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