"Double-path" ferroelectrics and the sign of the piezoelectric response
Yubo Qi, Sebastian E. Reyes-Lillo, and Karin M. Rabe

TL;DR
This paper introduces 'double-path' ferroelectrics, a class of materials with two polarization switching paths of opposite signs, explaining sign discrepancies in piezoelectric responses and enabling switchable electromechanical properties.
Contribution
The study proposes the concept of double-path ferroelectrics, demonstrating their existence in HfO$_2$ through first-principles calculations and predicting their potential for sign-switchable piezoelectric responses.
Findings
Two competing polarization paths with opposite signs in HfO$_2$
Explanation for discrepancies in experimental and theoretical piezoelectric signs
Potential to control piezoelectric sign via external conditions
Abstract
In this work, we propose a class of ferroelectrics (which we denote "double-path" ferroelectrics), characterized by two competing polarization switching paths for which the change in polarization is different and in fact of opposite sign. Depending on which path is favorable under given conditions, this leads to different identification of up- and down-polarized states. Since the sign of piezoelectric response depends on the assignment of up- or down-polarized state for a specific structure, this means that the material can exhibit different signs of the piezoelectric response under different conditions. We focus on HfO as a key example. Our first-principles calculations show that there are two competing paths in HfO, resulting from different displacements of the atoms from the initial to the final structures, and the change in polarization along these two paths is of opposite…
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Taxonomy
TopicsTheoretical and Computational Physics · Ferroelectric and Negative Capacitance Devices
