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Updated: Jan 12, 2026

Synthesis and Microdiffraction at Extreme Pressures and Temperatures
Published on: October 7, 2013
Mfergusonite DyTaO4under compression: an insight from experiment and theory
Saheli Banerjee1, Alka B Garg1,2, Boby Joseph3
1High Pressure & Synchrotron Radiation Physics Division, Bhabha Atomic Research Centre, Mumbai 400085, India.
None:
Rare-earth orthotantalate, DyTaO4is a technologically important material having unique combination of optical transparency, high dielectric constant and thermal robustness. In this study, we report the synthesis and ambient structural characterization of bothM- andM'-type monoclinic phases of DyTaO4. The high pressure (HP) behaviour ofM-type (fergusonite) phase was investigated using synchrotron-based x-ray diffraction (XRD) and Raman spectroscopy up to ∼28 GPa and 38 GPa respectively. Signature of pressure-induced structural phase transition was observed near 24 GPa, marked by changes in both diffraction patterns and vibrational spectra. First-principles density functional theory calculations predict a transition to a tetragonal structure (space group (SG)P4/nbm) near 15 GPa from ambient pressure monoclinic structure (SGI2/a). The XRD data and theoretical simulations for low pressure (LP) phase shows anisotropic lattice compression being largest forbaxis followed byaandcaxis as has been reported for other isostructural compounds in the series. We also present the experimental and simulated values of bulk modulus forMphase. The positive pressure coefficient for all the Raman modes in LP phase indicates the dynamical stability of the compound up to 24 GPa. Additionally, Grüneisen parameters are reported for several Raman-active modes to understand the vibrational response of the material under pressure. These results provide new insights into the HP structural evolution of DyTaO4and contribute to the broader understanding of pressure-induced phenomena in rare-earth orthotantalates.
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