Microscopic mechanisms of flexoelectricity in oxide membranes

Fuente: arXiv
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Main Authors: KP, Harikrishnan, Harbola, Varun, Choi, Jaehong, Crust, Kevin J., Shao, Yu-Tsun, Lee, Chia-Hao, Yoon, Dasol, Lee, Yonghun, Fuchs, Gregory D., Dreyer, Cyrus E., Hwang, Harold Y., Muller, David A.
Format: Preprint
Published: 2025
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author KP, Harikrishnan
Harbola, Varun
Choi, Jaehong
Crust, Kevin J.
Shao, Yu-Tsun
Lee, Chia-Hao
Yoon, Dasol
Lee, Yonghun
Fuchs, Gregory D.
Dreyer, Cyrus E.
Hwang, Harold Y.
Muller, David A.
author_facet KP, Harikrishnan
Harbola, Varun
Choi, Jaehong
Crust, Kevin J.
Shao, Yu-Tsun
Lee, Chia-Hao
Yoon, Dasol
Lee, Yonghun
Fuchs, Gregory D.
Dreyer, Cyrus E.
Hwang, Harold Y.
Muller, David A.
contents Modern electromechanical actuators and sensors rely on the piezoelectric effect that linearly couples strain and electric polarization. However, this effect is restricted to materials that lack inversion symmetry. In contrast, the flexoelectric effect couples strain gradients to electric polarization, and is a universal property in insulating materials of arbitrary symmetry. Flexoelectricity becomes prominent at the nanoscale from the inverse scaling of strain gradients with material dimensions. Here, we measure the strain-gradient-induced structural distortions in strontium titanate using multislice electron ptychography. This technique enables reliable picometer-scale measurements of the dominant oxygen-titanium distortions, correcting for artifacts that limited conventional imaging methods. This enables us to directly measure the sign of the net ionic contribution to the flexoelectric polarization. Guided by the experimental measurements, first-principles calculations show how the sign and magnitude of the bulk contribution to the flexoelectric coefficient in strontium titanate can be switched by tuning the strain state. Hybridization between the optical soft phonon and acoustic phonon modes drives this transition, yielding a large response and a polarity switch across the resonance. This strain-dependence might explain the sign discrepancy and orders of magnitude variation in the values of previously reported flexoelectric coefficients for strontium titanate. As the strain state of curved membranes can be tuned, our approach also suggests an approach to engineer nanoscale flexoelectric polarization using strain as a control parameter.
format Preprint
id arxiv_https___arxiv_org_abs_2503_12984
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Microscopic mechanisms of flexoelectricity in oxide membranes
KP, Harikrishnan
Harbola, Varun
Choi, Jaehong
Crust, Kevin J.
Shao, Yu-Tsun
Lee, Chia-Hao
Yoon, Dasol
Lee, Yonghun
Fuchs, Gregory D.
Dreyer, Cyrus E.
Hwang, Harold Y.
Muller, David A.
Materials Science
Mesoscale and Nanoscale Physics
Applied Physics
Modern electromechanical actuators and sensors rely on the piezoelectric effect that linearly couples strain and electric polarization. However, this effect is restricted to materials that lack inversion symmetry. In contrast, the flexoelectric effect couples strain gradients to electric polarization, and is a universal property in insulating materials of arbitrary symmetry. Flexoelectricity becomes prominent at the nanoscale from the inverse scaling of strain gradients with material dimensions. Here, we measure the strain-gradient-induced structural distortions in strontium titanate using multislice electron ptychography. This technique enables reliable picometer-scale measurements of the dominant oxygen-titanium distortions, correcting for artifacts that limited conventional imaging methods. This enables us to directly measure the sign of the net ionic contribution to the flexoelectric polarization. Guided by the experimental measurements, first-principles calculations show how the sign and magnitude of the bulk contribution to the flexoelectric coefficient in strontium titanate can be switched by tuning the strain state. Hybridization between the optical soft phonon and acoustic phonon modes drives this transition, yielding a large response and a polarity switch across the resonance. This strain-dependence might explain the sign discrepancy and orders of magnitude variation in the values of previously reported flexoelectric coefficients for strontium titanate. As the strain state of curved membranes can be tuned, our approach also suggests an approach to engineer nanoscale flexoelectric polarization using strain as a control parameter.
title Microscopic mechanisms of flexoelectricity in oxide membranes
topic Materials Science
Mesoscale and Nanoscale Physics
Applied Physics
url https://arxiv.org/abs/2503.12984