Mechanical Resonant Sensing of Spin Texture Dynamics in a 2D Antiferromagnet

S S M Enamul Hoque Yousuf (Department of Electrical & Computer Engineering University of Florida Gainesville FL 32611 USA) Y Yunong Wang (Department of Electrical & Computer Engineering University of Florida Gainesville FL 32611 USA) S Shreyas Ramachandran (Institute for Condensed Matter Physics and Complex Systems School of Physics and Astronomy The University of Edinburgh Edinburgh EH9 3FD UK) J John Koptur‐Palenchar (Department of Physics University of Florida Gainesville FL 32611 USA) C Chiara Tarantini (National High Magnetic Field Laboratory Tallahassee FL 32312 USA) L Li Xiang S Stephen McGill (National High Magnetic Field Laboratory 2 , 1800 E. Paul Dirac Dr., Tallahassee, Florida 32310-3706,) D Dmitry Smirnov E Elton J. G. Santos P Philip X.‐L. Feng (Department of Electrical & Computer Engineering University of Florida Gainesville FL 32611 USA) X Xiao‐Xiao Zhang (Department of Physics University of Florida Gainesville FL 32611 USA)

Abstract

AbstractThe coupling between the spin degrees of freedom and macroscopic mechanical motions, including striction, shearing, and rotation, has attracted wide interest with applications in actuation, transduction, and information processing. Experiments so far have established the mechanical responses to the long‐range ordered or isolated single spin states. However, it remains elusive whether mechanical motions can couple to a different type of magnetic structure, the non‐collinear spin textures, which exhibit nanoscale spatial variations of spin (domain walls, skyrmions, etc.) and are promising candidates to realize high‐speed computing devices. Here, collective spin texture dynamics is detected with nanoelectromechanical resonators fabricated from 2D antiferromagnetic (AFM) MnPS3 with 10−9 strain sensitivity. By examining radio frequency mechanical oscillations under magnetic fields, new magnetic transitions are identified with sharp dips in resonant frequency. They are attributed to collective AFM domain wall motions as supported by the analytical modeling of magnetostriction and large‐scale spin‐dynamics simulations. Additionally, an abnormally large modulation in the mechanical nonlinearity at the transition field infers a fluid‐like response due to ultrafast domain motion. The work establishes a strong coupling between spin texture and mechanical dynamics, laying the foundation for electromechanical manipulation of spin texture and developing quantum hybrid devices.

Article Details

Volume / Issue Vol. 37, Issue 29
Published July 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

S

S M Enamul Hoque Yousuf

Department of Electrical & Computer Engineering University of Florida Gainesville FL 32611 USA

Y

Yunong Wang

Department of Electrical & Computer Engineering University of Florida Gainesville FL 32611 USA

S

Shreyas Ramachandran

Institute for Condensed Matter Physics and Complex Systems School of Physics and Astronomy The University of Edinburgh Edinburgh EH9 3FD UK

J

John Koptur‐Palenchar

Department of Physics University of Florida Gainesville FL 32611 USA

C

Chiara Tarantini

National High Magnetic Field Laboratory Tallahassee FL 32312 USA

L

Li Xiang

S

Stephen McGill

National High Magnetic Field Laboratory 2 , 1800 E. Paul Dirac Dr., Tallahassee, Florida 32310-3706,

D

Dmitry Smirnov

E

Elton J. G. Santos

P

Philip X.‐L. Feng

Department of Electrical & Computer Engineering University of Florida Gainesville FL 32611 USA

X

Xiao‐Xiao Zhang

Department of Physics University of Florida Gainesville FL 32611 USA