反铁电性
涡流
物理
气象学
量子力学
电介质
铁电性
作者
Ying Liu,Huazhang Zhang,Konstantin Shapovalov,Ranming Niu,Julie M. Cairney,Xiaozhou Liao,Krystian Roleder,A. Majchrowski,Jordi Arbiol,Philippe Ghosez,Gustau Catalán
出处
期刊:Cornell University - arXiv
日期:2025-02-09
标识
DOI:10.48550/arxiv.2502.05852
摘要
Although ferroelectric materials are characterised by their parallel arrangement of electric dipoles, in the right boundary conditions these dipoles can reorganize themselves into vortices, antivortices and other non-trivial topological structures. By contrast, little is known about how (or whether) antiferroelectrics, which are materials showing an antiparallel arrangement of electric dipoles, can exhibit vortices or antivortices. In this study, using advanced aberration-corrected scanning transmission electron microscopy, we uncover the existence of atomic-scale (anti)vorticity in ferroelastic domain walls of the archetypal antiferroelectric phase of PbZrO3. The finding is supported, and its underlying physics is explained, using both second-principles simulations based on a deep-learning interatomic potential, and continuum field modelling. This discovery expands the field of chiral topologies into antiferroelectrics.
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