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February 5, 2026Advanced Materials0 citations

Atomically Resolved Acoustic Dynamics Coupled with Magnetic Order in a Van der Waals Antiferromagnet

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FZFaran ZhouKHKyle HwangboSHSung Soo Ha

Key Points

  • The aim is to characterize the elastic responses at atomic resolution in a van der Waals antiferromagnet during a magnetic transition.
  • Utilized ultrafast X-ray diffraction at a free-electron laser
  • Monitored atomic displacements and acoustic phonon modes across the Néel temperature
  • Analyzed in-plane and out-of-plane Bragg peaks post optical excitation
  • Identified significant directional changes in a transverse phonon mode across the Néel temperature
  • Measured wave vector derived from sound velocity and first-principles calculations
  • Observed substantial enhancement of interlayer shear acoustic mode amplitude in the antiferromagnetic phase

Abstract

ABSTRACT Magnetoelastic coupling in van der Waals (vdW) magnetic materials enables a unique interplay between the spin and lattice degrees of freedom. Characterizing the elastic responses with atomic and femtosecond resolution across the magnetic transition is essential for guiding the design of magnetically tunable actuators and strain‐mediated spintronic devices. Here, ultrafast X‐ray diffraction employed at a free‐electron laser reveals that the atomic displacements, wave vectors, and dispersion relations of acoustic phonon modes in a vdW antiferromagnet FePS 3 are coupled with the magnetic order, by tracking both in‐plane and out‐of‐plane Bragg peaks upon optical excitation across the Néel temperature ( T N ). One transverse mode shows that a quasi‐out‐of‐plane atomic displacement undergoes a significant directional change across T N . Its quasi‐in‐plane wave vector is derived by comparing the measured sound velocity and the first‐principles calculations. The other transverse mode is an interlayer shear acoustic mode whose amplitude is strongly enhanced in the antiferromagnetic phase, exhibiting eight times stronger amplitude than the longitudinal acoustic mode below T N . The atomically resolved characterization of acoustic phonon dynamics that couple with magnetic ordering opens opportunities for harnessing unique magnetoelastic coupling in vdW magnets on ultrafast timescales.

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Cite This Study

Zhou et al. (2026) studied this question.

synapsesocial.com/papers/69843383f1d9ada3c1fb0bb9https://doi.org/10.1002/adma.202522280
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