Emergent topological polarization textures in relaxor ferroelectrics

M Maksim Eremenko V Victor Krayzman S Semen Gorfman A Alexei Bosak H Helen Y. Playford P Philip A. Chater B Bruce Ravel W William J. Laws F Feng Ye A Arianna Minelli B Bi-Xia Wang Z Zuo-Guang Ye M Matthew G. Tucker (Neutron Scattering Division, Neutron Sciences Directorate) I Igor Levin

Abstract

Abstract Relaxor ferroelectrics underpin high-performance actuators and sensors, yet the nature of polar heterogeneities driving their broadband dielectric response remains debated. Using a unified, multimodal structural refinement framework— simultaneously fitting complementary X-ray and neutron total scattering, X-ray absorption spectra, and diffuse scattering—we reconstruct 3D mesoscale polarization maps in the classic relaxor system PbMg1/3Nb2/3O3–PbTiO3. We uncover self-organized swirling polarization textures with half-skyrmion (meron) vortices, challenging models of independent polar nanoregions. These textures, characterized by smooth changes in the polarization direction, originate from overlapping volumes in which the projections of locally correlated polarization vectors onto each volume’s long axis share the same sign. Vortex cores correlate strongly with local charge and strain gradients imposed by compositional heterogeneities. In this work, our results suggest that chemical disorder, acting via depolarizing and strain fields, stabilizes topological vortex textures of the polarization field, offering a route for engineering new dielectric and ferroelectric functionalities.

Article Details

Volume / Issue Vol. 16, Issue 1
Published August 13, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (14)

M

Maksim Eremenko

V

Victor Krayzman

S

Semen Gorfman

A

Alexei Bosak

H

Helen Y. Playford

P

Philip A. Chater

B

Bruce Ravel

W

William J. Laws

F

Feng Ye

A

Arianna Minelli

B

Bi-Xia Wang

Z

Zuo-Guang Ye

M

Matthew G. Tucker

Neutron Scattering Division, Neutron Sciences Directorate

I

Igor Levin