Mott-Insulator Ca2RuO4 under a static external electric field
Giuseppe Cuono, Carmine Autieri

TL;DR
This study explores how a static electric field influences the structural, electronic, and magnetic properties of Ca2RuO4, revealing electric-field-induced insulator-metal transitions and magnetic demagnetization effects.
Contribution
It provides a detailed analysis of electric field effects on Ca2RuO4, including phase transitions, piezoelectric properties, and surface-specific insulator-metal transitions, which were not previously characterized.
Findings
Electric field increases lattice constant c and reduces the band gap.
Electric field induces insulator-metal transition at the surface layers.
Magnetic moments undergo two phase transitions, with surface demagnetization at high fields.
Abstract
We have investigated the structural, electronic and magnetic properties of the Mott-insulator Ca2RuO4 under the application of a static external electric field in two regimes: bulk systems at small fields and thin films at large electric fields. Ca2RuO4 presents an S- and L-Pbca phase with short and long c lattice constants and with large and small band gaps, respectively. Using density functional perturbation theory, we have calculated the Born effective charges as response functions. Once we break the inversion symmetry by off-centering the Ru atoms, we calculate the piezoelectric properties of the system that suggest an elongation of the system under an electric field. Finally, we investigated a four unit cells slab at larger electric fields and we found insulator-metal transitions induced by the electric field. By looking at the local density of states, we have found that the gap…
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