Terahertz oscillation of $180^{\circ}$ domain walls in ferroelectric membranes

Fuente: arXiv
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Main Authors: Guo, Xiangwei, Wu, Jiaxuan, Zhu, Yujie, Ross, Aiden, Wang, Bo, Evans, Paul G., Chen, Long-Qing, Hu, Jia-Mian
Format: Preprint
Published: 2025
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author Guo, Xiangwei
Wu, Jiaxuan
Zhu, Yujie
Ross, Aiden
Wang, Bo
Evans, Paul G.
Chen, Long-Qing
Hu, Jia-Mian
author_facet Guo, Xiangwei
Wu, Jiaxuan
Zhu, Yujie
Ross, Aiden
Wang, Bo
Evans, Paul G.
Chen, Long-Qing
Hu, Jia-Mian
contents A fundamentally intriguing yet not well understood topic in the field of ferroelectrics is the collective excitation of domain walls (DWs), with potential applications to DW-based nanoelectronic and optoelectronic devices. Here we use dynamical phase-field simulations to identify the collective modes of an Ising-type $180^{\circ}$ DW in a uniaxially strained BaTiO3 membrane. The membrane concurrently functions as a cavity for polarization and acoustic waves and permits cavity-enhanced resonant excitation of polarization waves. The simulation reveals an unconventional DW sliding mode that exhibits a depolarization-field-driven nonzero resonant frequency and a dynamically changing internal structure during sliding. These features differ from the previously reported DW sliding modes that have a zero resonant frequency or a rigid internal structure. An analytical model is developed to quantitatively understand the origin of this new DW mode and predict the effect of strain on the mode frequency. The analytically predicted strain dependence of the frequencies of the unconventional DW sliding mode and the DW breathing mode, both in the terahertz regime, is further validated by dynamical phase-field simulations. These results provide new insights into the high-frequency dynamics of ferroelectric DWs and suggest opportunities for realizing on-demand control of phonon-DW resonance by strain, and more broadly, discovering and controlling unconventional DW modes in conventional domain patterns, with applications to reconfigurable THz and optical devices.
format Preprint
id arxiv_https___arxiv_org_abs_2511_18280
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Terahertz oscillation of $180^{\circ}$ domain walls in ferroelectric membranes
Guo, Xiangwei
Wu, Jiaxuan
Zhu, Yujie
Ross, Aiden
Wang, Bo
Evans, Paul G.
Chen, Long-Qing
Hu, Jia-Mian
Materials Science
Mesoscale and Nanoscale Physics
A fundamentally intriguing yet not well understood topic in the field of ferroelectrics is the collective excitation of domain walls (DWs), with potential applications to DW-based nanoelectronic and optoelectronic devices. Here we use dynamical phase-field simulations to identify the collective modes of an Ising-type $180^{\circ}$ DW in a uniaxially strained BaTiO3 membrane. The membrane concurrently functions as a cavity for polarization and acoustic waves and permits cavity-enhanced resonant excitation of polarization waves. The simulation reveals an unconventional DW sliding mode that exhibits a depolarization-field-driven nonzero resonant frequency and a dynamically changing internal structure during sliding. These features differ from the previously reported DW sliding modes that have a zero resonant frequency or a rigid internal structure. An analytical model is developed to quantitatively understand the origin of this new DW mode and predict the effect of strain on the mode frequency. The analytically predicted strain dependence of the frequencies of the unconventional DW sliding mode and the DW breathing mode, both in the terahertz regime, is further validated by dynamical phase-field simulations. These results provide new insights into the high-frequency dynamics of ferroelectric DWs and suggest opportunities for realizing on-demand control of phonon-DW resonance by strain, and more broadly, discovering and controlling unconventional DW modes in conventional domain patterns, with applications to reconfigurable THz and optical devices.
title Terahertz oscillation of $180^{\circ}$ domain walls in ferroelectric membranes
topic Materials Science
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2511.18280