Spin-resolved imaging of atomic-scale helimagnetism in mono- and bilayer NiI <sub>2</sub>

M Mao-Peng Miao (School of Physics and Wuhan National High Magnetic Field Center, Huazhong University of Science and Technology) N Nanshu Liu (Beijing Key Laboratory of Optoelectronic Functional Materials and Micro-Nano Devices, School of Physics, Renmin University of China) W Wen-Hao Zhang J Jian-Wang Zhou (School of Physics and Wuhan National High Magnetic Field Center, Huazhong University of Science and Technology) D Dao-Bo Wang (School of Physics and Wuhan National High Magnetic Field Center) C Cong Wang (Key Laboratory of Preclinical Study for New Drugs of Gansu Province, School of Basic Medical Sciences & Research Unit of Peptide Science, Chinese Academy of Medical Sciences, 2019RU066) W Wei Ji (Beijing Key Laboratory of Optoelectronic Functional Materials & Micro-Nano Devices, School of Physics) Y Ying-Shuang Fu (School of Physics and Wuhan National High Magnetic Field Center)

Abstract

Noncollinear magnetic orders in monolayer van der Waals magnets are crucial for probing delicate magnetic interactions under minimal spatial constraints and advancing miniaturized spintronic devices. Despite their significance, achieving atomic-scale identification remains challenging. In this study, we utilized spin-polarized scanning tunneling microscopy and density functional theory calculations to identify spin-spiral orders in mono- and bilayer NiI 2 , grown on graphene-covered SiC(0001) substrates. We found two distinct spin-spiral states with Q vectors aligning and deviating by 7° from the lattice direction, exhibiting periodicities of 4.54 and 5.01 times the lattice constant, respectively. These findings contrast with bulk properties and align closely with our theoretical calculations. Surprisingly, the nonmultiples of spin spirals within finite-sized magnetic domains induce net magnetic moments, facilitating collective spin switching behavior under magnetic fields. Our research reveals intrinsic noncollinear magnetism at the monolayer limit with atomic-scale resolution, paving the way for exploring spin phenomena.

Article Details

Volume / Issue Vol. 122, Issue 39
Published September 30, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (8)

M

Mao-Peng Miao

School of Physics and Wuhan National High Magnetic Field Center, Huazhong University of Science and Technology

N

Nanshu Liu

Beijing Key Laboratory of Optoelectronic Functional Materials and Micro-Nano Devices, School of Physics, Renmin University of China

W

Wen-Hao Zhang

J

Jian-Wang Zhou

School of Physics and Wuhan National High Magnetic Field Center, Huazhong University of Science and Technology

D

Dao-Bo Wang

School of Physics and Wuhan National High Magnetic Field Center

C

Cong Wang

Key Laboratory of Preclinical Study for New Drugs of Gansu Province, School of Basic Medical Sciences & Research Unit of Peptide Science, Chinese Academy of Medical Sciences, 2019RU066

W

Wei Ji

Beijing Key Laboratory of Optoelectronic Functional Materials & Micro-Nano Devices, School of Physics

Y

Ying-Shuang Fu

School of Physics and Wuhan National High Magnetic Field Center