Pressure induced structural transitions, coordination crossover, and optoelectronic response in divalent metavanadate CaV2O6
Bhagyashri Giri, Asish Kumar Mishra, Bidisha Mukherjee, Debabrata Samanta, Nico Giordano, Goutam Dev Mukherjee
Abstract
High-pressure synchrotron X-ray diffraction, Raman spectroscopy, photoluminescence (PL), and UV-Vis absorption measurements were carried out on the divalent metavanadate CaV2O6 up to 31 GPa at room temperature. Ambient CaV2O6 crystallizes in a centrosymmetric pseudo-brannerite monoclinic structure (C2/m), where vanadium atoms reside in fivefold-coordinated VO5 trigonal bipyramids. Under hydrostatic compression, the system undergoes a structural phase transition starting at 1 GPa to a lower-symmetry, non-centrosymmetric monoclinic phase (C2), which becomes the single stable phase above 5.2 GPa. This transition involves an increase in vanadium coordination from VO5 bipyramids to edge-sharing distorted VO6 octahedra. High-pressure Raman scattering corroborates the structural phase boundaries, exhibiting mode softening (γ3 = -0.42, γ9 = -0.46) within the mixed-phase regime (1.0 - 4.4 GPa) and sharp anomalies in mode frequencies and linewidths across 5.2 GPa. The optical measurements show complete PL quenching near 1 GPa due to non-radiative recombination pathways introduced by local polyhedral distortions, alongside a non-monotonic evolution of the indirect optical band gap. Above 20 GPa, an anomaly in polyhedral distortion and internal strain drives an isosymmetric structural modification within the C2 phase, marked by an alteration in bulk compressibility and stabilization of the optical gap. Comparative high-pressure band-gap measurements on the sister compound MgV2O6 validate the explicit coupling between cation coordination changes and optoelectronic response in divalent metavanadates.
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