Lattice dynamics and ferroelectric properties of the nitride perovskite
arXiv:2305.00113 · doi:10.1103/PhysRevB.95.014111
Abstract
Using first-principles calculations we examine the crystal structures and phase transitions of nitride perovskite LaWN. Lattice dynamics calculations indicate that the ground-state structure belongs to space group . Two competitive phase transition pathways are identified which are characterized by symmetry-adapted distortion modes. The results suggest that LaWN should be an excellent ferroelectric semiconductor: its large spontaneous polarization of around 61 C/cm is comparable to that of PbTiO, and its band gap is about 1.72 eV. Ferroelectricity is found to result from the \emph{B}-site instability driven by hybridization between W-5 and N-2 orbitals. These properties make LaWN an attractive candidate material for use in ferroelectric memory devices and photovoltaic cells.
13 pages, 8 figures in main text and 5 figures in supplementary
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