Morphogenesis of spin cycloids in a noncollinear antiferromagnet

S Shashank Kumar Ojha (Rice Advanced Materials Institute) P Pratap Pal S Sergei Prokhorenko (Department of Physics and Institute for Nanoscience and Engineering) S Sajid Husain (Department of Materials Science and Engineering) M Maya Ramesh (Department of Materials Science and Engineering) X Xinyan Li D Deokyoung Kang (Rice Advanced Materials Institute) P Peter Meisenheimer (Department of Materials Science and Engineering) D Darrell G. Schlom (Department of Materials Science and Engineering) P Paul Stevenson (Department of Physics) L Lucas Caretta (Department of Physics) Y Yousra Nahas (Department of Physics and Institute for Nanoscience and Engineering) Y Yimo Han (Department of Materials Science and Nano Engineering) L Lane W. Martin (Rice Advanced Materials Institute) L Laurent Bellaiche (Department of Physics and Institute for Nanoscience and Engineering) C Chang-Beom Eom R Ramamoorthy Ramesh (Rice Advanced Materials Institute)

Abstract

Pattern formation in spin systems with continuous-rotational symmetry (CRS) provides a powerful platform to study emergent complex magnetic phases and topological defects in condensed-matter physics. However, its understanding and correlation with unconventional magnetic order along with high-resolution nanoscale imaging are challenging. Here, we employ scanning nitrogen vacancy (NV) magnetometry to unveil the morphogenesis of spin cycloids at both the local and global scales within a single ferroelectric domain of (111)-oriented BiFeO 3 , which is a noncollinear antiferromagnet, resulting in formation of a glassy labyrinthine pattern. We find that the domains of locally oriented cycloids are interconnected by an array of topological defects and exhibit isotropic energy landscape predicted by first-principles calculations. We propose that the CRS of spin-cycloid propagation directions within the (111) drives the formation of the labyrinthine pattern and the associated topological defects such as antiferromagnetic skyrmions. Unexpectedly, reversing the as-grown ferroelectric polarization from [ 1   ¯ 1 ¯ 1 ¯ ] to [111] produces a noncycloidal NV image contrast which could be attributed to either the emergence of a uniformly magnetized state or a reversal of the cycloid polarity. These findings highlight that (111)-oriented BiFeO 3 is not only important for studying the fascinating subject of pattern formation but could also be utilized as an ideal platform for integrating novel topological defects in the field of antiferromagnetic spintronics.

Article Details

Volume / Issue Vol. 122, Issue 17
Published April 29, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (17)

S

Shashank Kumar Ojha

Rice Advanced Materials Institute

P

Pratap Pal

S

Sergei Prokhorenko

Department of Physics and Institute for Nanoscience and Engineering

S

Sajid Husain

Department of Materials Science and Engineering

M

Maya Ramesh

Department of Materials Science and Engineering

X

Xinyan Li

D

Deokyoung Kang

Rice Advanced Materials Institute

P

Peter Meisenheimer

Department of Materials Science and Engineering

D

Darrell G. Schlom

Department of Materials Science and Engineering

P

Paul Stevenson

Department of Physics

L

Lucas Caretta

Department of Physics

Y

Yousra Nahas

Department of Physics and Institute for Nanoscience and Engineering

Y

Yimo Han

Department of Materials Science and Nano Engineering

L

Lane W. Martin

Rice Advanced Materials Institute

L

Laurent Bellaiche

Department of Physics and Institute for Nanoscience and Engineering

C

Chang-Beom Eom

R

Ramamoorthy Ramesh

Rice Advanced Materials Institute