Monoclinic (Mc) phase and electric field induced phase transformation in BaTiO3
Ajay Kumar Kalyani, Dipak Khatua, B. Loukya, Ranjan Datta, Andy N., Fitch, Anatoliy Senyshyn, and Rajeev Ranjan

TL;DR
This study reveals that BaTiO3 at room temperature exhibits a coexistence of monoclinic and tetragonal phases, with electric fields inducing an orthorhombic phase, explaining its exceptional dielectric and piezoelectric properties.
Contribution
The paper uncovers the coexistence of monoclinic and tetragonal phases in BaTiO3 and demonstrates electric field-induced phase transformations using advanced microscopy and diffraction techniques.
Findings
Coexistence of monoclinic and tetragonal phases at room temperature.
Electric field induces orthorhombic phase in BaTiO3.
BaTiO3's properties are linked to its proximity to a phase instability regime.
Abstract
For decades it has been a well-known fact that among the few ferroelectric compounds in the perovskite family namely BaTiO3, KNbO3, PbTiO3 Na1/2Bi1/2TiO3 the dielectric and piezoelectric properties of BaTiO3 is considerably higher than the others in polycrystalline form at room temperature. Further, similar to ferroelectric alloys exhibiting morphotropic phase boundary, single crystals of BaTiO3 exhibits anomalously large piezoelectric response when poled away from the direction of spontaneous polarization at room temperature. These anomalous features in BaTiO3 remained unexplained so far from the structural stand point. In this work we have used high resolution synchrotron X-ray powder diffraction, atomic resolution aberration corrected transmission electron microscopy, in conjunction with a novel powder poling technique, to reveal that (i) the equilibrium state of BaTiO3 is…
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Taxonomy
TopicsFerroelectric and Piezoelectric Materials · Acoustic Wave Resonator Technologies · Material Dynamics and Properties
