Giant‐Exchange‐Driven Vectorial Control of a Minimal Topological Magnet in Eu <sub>3</sub> In <sub>2</sub> As <sub>4</sub>

H Haonan Chen (School of Flexible Electronics (Future Technologies), Key Laboratory of Flexible Electronics, and Institute of Advanced Materials, Nanjing Tech University, 30 South Puzhu Road, Nanjing 211816, P. R. China) X Xunkai Duan G Guangyi Wang (State Key Laboratory of Precision Spectroscopy East China Normal University Shanghai China) Y Yuhan Du H Huayao Li J Jiayu Wang (Jiangsu Engineering Laboratory of Novel Functional Polymeric Materials, Jiangsu Key Laboratory of Advanced Negative Carbon Technologies, Suzhou Key Laboratory of Soft Material and New Energy, College of Chemistry, Chemical Engineering and Materials Science, Soochow University) W Wenbin Wu Z Zixuan Xu Y Yingchao Xia J Jiaming Gu P Pengliang Leng L Lin Miao F Fengfeng Zhu X Xiang Yuan T Tong Zhou C Cheng Zhang

Abstract

ABSTRACT The interplay between magnetism and band topology provides a route to controlling quantum states of matter, yet its realization in materials is often constrained by weak exchange coupling and complex electronic structures. Here, a giant exchange coupling is identified in the newly predicted topological magnet Eu 3 In 2 As 4 , giving rise to magnetization‐dependent band shifts of up to 300 meV. Together with its intrinsically soft magnetic response, this strong coupling enables systematic tuning of topological phases by both the magnitude and orientation of applied magnetic fields. The magneto‐topological phase diagram is mapped out in which an antiferromagnetic topological insulator ground state evolves, under modest fields, into a proposed intermediate 2/3‐ferrimagnetic phase, and further into fully polarized ferromagnetic states predicted to host either Weyl or nodal‐ring semimetals. Notably, the Weyl phase corresponds to a minimal model hosting a single pair of Weyl nodes. Quantum oscillations, anomalous Hall transport and magneto‐infrared spectroscopy consistently reveal exchange‐driven band reconstruction across these transitions. Rotation of the magnetization theoretically provides an efficient means to tune the momentum‐space positions and separations of the Weyl nodes. These results establish Eu 3 In 2 As 4 as a model system for exploring how strong exchange coupling can be used to control topological band structures with minimal complexity.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 06, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (16)

H

Haonan Chen

School of Flexible Electronics (Future Technologies), Key Laboratory of Flexible Electronics, and Institute of Advanced Materials, Nanjing Tech University, 30 South Puzhu Road, Nanjing 211816, P. R. China

X

Xunkai Duan

G

Guangyi Wang

State Key Laboratory of Precision Spectroscopy East China Normal University Shanghai China

Y

Yuhan Du

H

Huayao Li

J

Jiayu Wang

Jiangsu Engineering Laboratory of Novel Functional Polymeric Materials, Jiangsu Key Laboratory of Advanced Negative Carbon Technologies, Suzhou Key Laboratory of Soft Material and New Energy, College of Chemistry, Chemical Engineering and Materials Science, Soochow University

W

Wenbin Wu

Z

Zixuan Xu

Y

Yingchao Xia

J

Jiaming Gu

P

Pengliang Leng

L

Lin Miao

F

Fengfeng Zhu

X

Xiang Yuan

T

Tong Zhou

C

Cheng Zhang