Controlled motion of polar vortex boundary in oxide heterostructures

Polar vortices in ferroelectric heterostructures hold promise for high-density, energy-efficient nanoelectronics, but their controlled motion remains elusive due to strong pinning and lattice-coupled dynamics. Here, we report real-time observation of vortex boundary motion in PbTiO₃/SrTiO₃ heterostructures using localized trailing electric fields applied via a conductive atomic force microscopy (AFM) tip. The vortex boundaries show reversible motion that depends on both field polarity and AFM tip trajectory. By precisely steering the tip along specific paths, we achieve controlled, reconfigurable vortex boundary motion with remarkable stability over extended periods. In-situ scanning transmission electron microscopy further confirmed the controlled motion of the vortex boundary. Phase-field simulations reveal that this motion is governed by switching of the zigzag pattern at the vortex core, pinpointing the underlying physical mechanism. These results establish the feasibility of externally controlled vortex boundary motion, advancing both fundamental understanding of polar topological dynamics and prospects for next-generation polar-vortex-based nanoelectronic devices. The authors demonstrate reversible electric-field control of polar vortex boundaries in PbTiO₃/SrTiO₃ heterostructures, revealing their real-time motion and providing a pathway toward reconfigurable, low-power, high density topological nanoelectronics.

Authors

Institutions

Publication Details

Journal
Nature Communications
Published
2026-09-28
DOI
https://doi.org/10.1038/s41467-026-78049-z
Primary Topic
Topological Materials and Phenomena
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

Controlled motion of polar vortex boundary in oxide heterostructures

R. Ramesh, Peiran Tong, Sujit Das, He Tian et al.
Nature Communications
Topological Materials and Phenomena
article

Controlled motion of polar vortex boundary in oxide heterostructures

R. Ramesh, Peiran Tong, Sujit Das, He Tian, Pushpendra Gupta, Qi Xu, Zijian Hong, Guanshihan Du, Mohit Tanwani, Yongjun Wu
article en

Abstract

Polar vortices in ferroelectric heterostructures hold promise for high-density, energy-efficient nanoelectronics, but their controlled motion remains elusive due to strong pinning and lattice-coupled dynamics. Here, we report real-time observation of vortex boundary motion in PbTiO₃/SrTiO₃ heterostructures using localized trailing electric fields applied via a conductive atomic force microscopy (AFM) tip. The vortex boundaries show reversible motion that depends on both field polarity and AFM tip trajectory. By precisely steering the tip along specific paths, we achieve controlled, reconfigurable vortex boundary motion with remarkable stability over extended periods. In-situ scanning transmission electron microscopy further confirmed the controlled motion of the vortex boundary. Phase-field simulations reveal that this motion is governed by switching of the zigzag pattern at the vortex core, pinpointing the underlying physical mechanism. These results establish the feasibility of externally controlled vortex boundary motion, advancing both fundamental understanding of polar topological dynamics and prospects for next-generation polar-vortex-based nanoelectronic devices. The authors demonstrate reversible electric-field control of polar vortex boundaries in PbTiO₃/SrTiO₃ heterostructures, revealing their real-time motion and providing a pathway toward reconfigurable, low-power, high density topological nanoelectronics.

Nature Communications
Lawrence Berkeley National Laboratory (US), Hainan University (CN), Indian Institute of Science Bangalore (IN), Zhejiang University (CN), University of California, Berkeley (US)
Affordable and clean energy
Openalex Percentile: Top 14%
Topological Materials and Phenomena
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.