Domain-Wall Enhanced Pyroelectricity

IF 15.7 1区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Physical Review X Pub Date : 2025-03-18 DOI:10.1103/physrevx.15.011063
Ching-Che Lin, Yihao Hu, Jaegyu Kim, Djamila Lou, Ashwath Bhat, Pravin Kavle, Tae Yeon Kim, Chris Dames, Shi Liu, Lane W. Martin
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Abstract

Ferroelectric domain walls are not just static geometric boundaries between polarization domains; they are, in fact, dynamic and functional interfaces with the potential for diverse technological applications. While the roles of ferroelectric domain walls in dielectric and piezoelectric responses are better understood, their impact on pyroelectric response remains underexplored. Here, the pyroelectric response of (001)-, (101)-, and (111)-oriented epitaxial heterostructures of the tetragonal ferroelectric PbZr0.2Ti0.8O3 is probed. These differently oriented heterostructures exhibit the same type of 90° ferroelastic domain walls, but their geometry and density vary with orientation. In turn, piezoresponse force microscopy and direct pyroelectric measurements reveal that (111)-oriented heterostructures exhibit both the highest density of domain walls and pyroelectric coefficients. By varying the thickness of these (111)-oriented heterostructures (from 100 to 280 nm), the density of domain walls can be varied, and a direct correlation between domain-wall density and pyroelectric coefficients is found. Molecular-dynamics simulations confirm these findings and reveal a novel domain-wall contribution to pyroelectric response in that the volume of the material in or near the domain walls exhibits a significantly higher pyroelectric coefficient as compared to the bulk of the domains. Analysis suggests that the domain-wall material has a higher responsivity of the polarization to both external fields and temperature. This study sheds light on the microscopic origin of domain-wall contributions to pyroelectricity and provides a pathway to controlling this effect. Published by the American Physical Society 2025
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畴壁增强热释电
铁电畴壁不仅仅是极化畴之间的静态几何边界;实际上,它们是具有各种技术应用潜力的动态和功能接口。虽然铁电畴壁在介电和压电响应中的作用已经得到了更好的理解,但它们对热释电响应的影响仍未得到充分的探讨。本文研究了四方铁电PbZr0.2Ti0.8O3的(001)-、(101)-和(111)取向外延异质结构的热释电响应。这些不同取向的异质结构表现出相同类型的90°铁弹性畴壁,但它们的几何形状和密度随取向而变化。反过来,压电响应力显微镜和直接热释电测量表明(111)取向异质结构具有最高的畴壁密度和热释电系数。通过改变这些(111)取向异质结构的厚度(从100 nm到280 nm),可以改变畴壁密度,并且发现畴壁密度与热释电系数之间存在直接相关性。分子动力学模拟证实了这些发现,并揭示了一种新的畴壁对热释电响应的贡献,即与畴体相比,畴壁内或附近的材料体积表现出显着更高的热释电系数。分析表明,畴壁材料对外部场和温度都有较高的极化响应。本研究揭示了畴壁对热释电的微观成因,并提供了控制这种效应的途径。2025年由美国物理学会出版
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Physical Review X
Physical Review X PHYSICS, MULTIDISCIPLINARY-
CiteScore
24.60
自引率
1.60%
发文量
197
审稿时长
3 months
期刊介绍: Physical Review X (PRX) stands as an exclusively online, fully open-access journal, emphasizing innovation, quality, and enduring impact in the scientific content it disseminates. Devoted to showcasing a curated selection of papers from pure, applied, and interdisciplinary physics, PRX aims to feature work with the potential to shape current and future research while leaving a lasting and profound impact in their respective fields. Encompassing the entire spectrum of physics subject areas, PRX places a special focus on groundbreaking interdisciplinary research with broad-reaching influence.
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