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February 2, 2026Communications Materials6 citationsOpen Access

Discovery of magnetic-field-tunable density modulations and spin tilting in a layered altermagnet

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CCChristopher CandeloraMXMuxian XuSCSiyu Cheng

Key Points

  • This research aims to explore the magnetic properties of a layered altermagnet and the effects of magnetic fields on its electronic structure.
  • Studied a cobalt-intercalated NbSe2 altermagnet using scanning tunneling microscopy and spectroscopy (STM/S)
  • Utilized spectroscopic-imaging STM and spin-polarized STM to analyze charge and spin density modulations
  • Conducted density functional theory simulations to understand the cobalt superstructure and its effects on density modulations.
  • Identified emergent tri-directional charge and spin density modulations at the selenium surface
  • Demonstrated modulation amplitudes and electronic density-of-states are tunable by out-of-plane magnetic fields
  • Revealed that the direction and strength of the magnetic field influence the tilting of cobalt spins, impacting electronic properties.

Abstract

Abstract Altermagnets recently emerged as a new class of magnetic materials, arising from specific spin crystal symmetries. They exhibit a spin-polarized electronic band structure similar to ferromagnets, yet possess zero net magnetization, promising exotic properties. Here we study a layered triangular lattice altermagnet, cobalt-intercalated NbSe 2 using scanning tunneling microscopy and spectroscopy (STM/S). Spectroscopic-imaging STM and spin-polarized STM reveals emergent 2 a 0 tri-directional charge and spin density modulations on the selenium surface. Density functional theory simulations suggest these modulations reflect the underlying cobalt superstructure. We discover that an out-of-plane magnetic field tunes the modulation amplitudes and the electronic density-of-states in a manner dependent on the field direction and strength. This behavior is attributed to the field-induced tilting of cobalt spins, which can have profound implications on the electronic properties of the altermagnet. Our results provide atomic-scale insights to uncover a magnetic-field tunable altermagnetic band structure, highlight the importance of understanding spin canting in altermagnets.

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Cite This Study

Candelora et al. (2026) studied this question.

synapsesocial.com/papers/69810006c1c9540dea813048https://doi.org/10.1038/s43246-026-01081-5
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