Interface‐Induced Stability of Nontrivial Topological Spin Textures: Unveiling Room‐Temperature Hopfions and Skyrmions

F Ferhat Katmis (Department of Physics Massachusetts Institute of Technology Cambridge MA 02139 USA) V Valeria Lauter R Rawana Yagan (Department of Electrical and Electronics Engineering Koç University Istanbul 34450 Türkiye) I Iuri S. Brandt (Departamento de Física Universidade Federal de Viçosa Viçosa 36570‐900 Brazil) A Arash M. Cheghabouri (Department of Electrical and Electronics Engineering Koç University Istanbul 34450 Türkiye) H Hua Zhou (X-ray Science Division, Advanced Photon Source, Argonne National Laboratory, Lemont, IL, USA.) J John W. Freeland (Advanced Photon Source, Argonne National Laboratory) C Clodoaldo I. L. de Araujo (Departamento de Física Universidade Federal de Viçosa Viçosa 36570‐900 Brazil) M Michelle E. Jamer (Physics Department, United States Naval Academy 1 , Annapolis, Maryland 21402,) D Don Heiman M Mehmet C. Onbasli (Electrical and Electronics Engineering and Physics, Koç University 5 , Rumelifeneri Yolu 34450, Sariyer, Istanbul,) J Jagadeesh S. Moodera

Abstract

Abstract Topological spin configurations, such as soliton‐like spin texture and Dirac electron assemblies, have recently emerged in fundamental science and technology. Achieving stable topological spin textures at room temperature is crucial for their use as long‐range information carriers. However, their creation and manipulation are hindered by multi‐step field training and competing interactions. Thus, a spontaneous ground state for multidimensional topological spin textures is desirable, with skyrmions forming swirling, hedgehog‐like spin structures in two dimensions and hopfions as their twisted 3D counterparts. Here, the first observation of robust and reproducible topological spin textures of hopfions and skyrmions observed at room temperature and in zero magnetic field is reported, which are stabilized by geometric confinement and protected by interfacial magnetism in a ferromagnet/topological insulator/ferromagnet trilayer heterostructure. These skyrmion‐hopfion configurations are directly observed at room temperature with Lorenz transmission electron microscopy. Using micromagnetic modeling, the experimental observations of hopfion‐skyrmion assemblies are reproduced. This model reveals a complete picture of how spontaneously organized skyrmion lattices encircled by hopfion rings are controlled by surface electrons, uniaxial anisotropy, and Dzyaloshinskii‐Moriya interaction. This study provides evidence that topological chiral spin textures can facilitate the development of magnetic topological carriers, paving the way for ultralow‐power and high‐density information processing.

Article Details

Volume / Issue Vol. 38, Issue 1
Published January 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

F

Ferhat Katmis

Department of Physics Massachusetts Institute of Technology Cambridge MA 02139 USA

V

Valeria Lauter

R

Rawana Yagan

Department of Electrical and Electronics Engineering Koç University Istanbul 34450 Türkiye

I

Iuri S. Brandt

Departamento de Física Universidade Federal de Viçosa Viçosa 36570‐900 Brazil

A

Arash M. Cheghabouri

Department of Electrical and Electronics Engineering Koç University Istanbul 34450 Türkiye

H

Hua Zhou

X-ray Science Division, Advanced Photon Source, Argonne National Laboratory, Lemont, IL, USA.

J

John W. Freeland

Advanced Photon Source, Argonne National Laboratory

C

Clodoaldo I. L. de Araujo

Departamento de Física Universidade Federal de Viçosa Viçosa 36570‐900 Brazil

M

Michelle E. Jamer

Physics Department, United States Naval Academy 1 , Annapolis, Maryland 21402,

D

Don Heiman

M

Mehmet C. Onbasli

Electrical and Electronics Engineering and Physics, Koç University 5 , Rumelifeneri Yolu 34450, Sariyer, Istanbul,

J

Jagadeesh S. Moodera