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A re-examination of antiferroelectric PbZrO$_3$ and PbHfO$_3$: an 80-atom $Pnam$ structure

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arxiv 2102.08856 v2 pith:FFW675WK submitted 2021-02-17 cond-mat.mtrl-sci physics.comp-ph

classification cond-mat.mtrl-sciphysics.comp-ph
keywords pbampnamstructureantiferroelectricatomdifferentgroundinstability
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abstract

First principles density functional theory (DFT) simulations of antiferroelectric (AFE) PbZrO$_3$ and PbHfO$_3$ reveal a dynamical instability in the phonon spectra of their purported low temperature $Pbam$ ground states. This instability doubles the $c$-axis of $Pbam$ and condenses five new small amplitude phonon modes giving rise to an 80-atom $Pnam$ structure. Compared with $Pbam$, the stability of this structure is slightly enhanced and highly reproducible as demonstrated through using different DFT codes and different treatments of electronic exchange & correlation interactions. This suggests that $Pnam$ is a new candidate for the low temperature ground state of both materials. With this finding, we bring parity between the AFE archetypes and recent observations of a very similar AFE phase in doped or electrostatically engineered BiFeO$_3$.

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  1. Tilt-driven ferrielectricity in PbZrO$_3$

    cond-mat.mtrl-sci 2026-07 conditional novelty 8.0 of 10

    An extra oxygen tilt in antiferroelectric PbZrO3 breaks the symmetry that cancels opposite dipoles, creating a predicted Pmc2_1 ferrielectric phase with net polarization.

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