Ultrafast multi-level control of sub-50 nm skyrmions in a Pd-intercalated van der Waals magnet

H Huai Zhang (National Key Laboratory of Earth System Numerical Modeling and Application) B Bei Ding (Shanghai Key Laboratory for Antibody-Drug Conjugates with Innovative Target, National Key Laboratory of Innovative Immunotherapy, School of Chemistry and Chemical Engineering) B Bo Zhao K Ke Pei (Laboratory of Advanced Materials, Shanghai Key Lab of Molecular Catalysis and Innovative Materials, Department of Materials Science, Academy for Engineering & Technology) Y Yue Hu R Runhang Zhang R Rui Su M Minghao Zheng Z Zefang Li Q Qing Zhou G Guoping Zhao (College of Physics and Electronic Engineering, Sichuan Normal University) X Xingsen Gao Y Yangfan Hu X Xue Jiang J Jijun Zhao (Guangdong Basic Research Center of Excellence for Structure and Fundamental Interactions of Matter, Guangdong Provincial Key Laboratory of Quantum Engineering and Quantum Materials, School of Physics) R Renchao Che X Xuewen Fu Z Zhipeng Hou J Junming Liu

Abstract

Abstract Achieving ultrafast, multi-level control of nanoscale skyrmions offers a transformative route for advancing van der Waals spintronics towards high-speed, scalable neuromorphic computing applications. However, progress has been impeded by the relatively large skyrmion size (~100 nm) in existing van der Waals magnets and the lack of efficient control strategies. Here, we simultaneously address both challenges by combining atomic intercalation with femtosecond laser manipulation. Through Pd atomic intercalation into the van der Waals magnet Fe 3-δ GaTe 2 , we realize magnetic field-stabilized skyrmions with an average diameter of ~43 nm at room temperature, the smallest skyrmions reported in the van der Waals magnets to date. Mechanism analysis reveals that this size reduction arises from enhanced Dzyaloshinskii-Moriya interaction and suppressed Heisenberg exchange coupling. On this tailored platform, we further demonstrate femtosecond laser-induced ultrafast generation of 43 nm skyrmions with an ultra-low energy consumption of 0.6 pJ per skyrmion. Most importantly, by tuning the laser pulse number, we achieve deterministic, multi-level modulation of skyrmion density, enabling skyrmion-based optical neuromorphic computing with a simulated training accuracy of ~91%.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 21, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (19)

H

Huai Zhang

National Key Laboratory of Earth System Numerical Modeling and Application

B

Bei Ding

Shanghai Key Laboratory for Antibody-Drug Conjugates with Innovative Target, National Key Laboratory of Innovative Immunotherapy, School of Chemistry and Chemical Engineering

B

Bo Zhao

K

Ke Pei

Laboratory of Advanced Materials, Shanghai Key Lab of Molecular Catalysis and Innovative Materials, Department of Materials Science, Academy for Engineering & Technology

Y

Yue Hu

R

Runhang Zhang

R

Rui Su

M

Minghao Zheng

Z

Zefang Li

Q

Qing Zhou

G

Guoping Zhao

College of Physics and Electronic Engineering, Sichuan Normal University

X

Xingsen Gao

Y

Yangfan Hu

X

Xue Jiang

J

Jijun Zhao

Guangdong Basic Research Center of Excellence for Structure and Fundamental Interactions of Matter, Guangdong Provincial Key Laboratory of Quantum Engineering and Quantum Materials, School of Physics

R

Renchao Che

X

Xuewen Fu

Z

Zhipeng Hou

J

Junming Liu