ArXiv TLDR

Revealing the origin of XMCD in an altermagnet via three-dimensional control of spins

🐦 Tweet
2605.00815

Daire Mallon, Zixuan Wu, Jheng-Cyuan Lin, Ruiwen Xie, Bo Zhao + 13 more

cond-mat.mtrl-scicond-mat.mes-hallcond-mat.other

TLDR

This paper reveals that XMCD in altermagnets is driven by spin-direction symmetry breaking, enabling 3D mapping of nanoscale spin textures.

Key contributions

  • Shows XMCD in altermagnets is governed by spin-direction-induced symmetry breaking, distinct from spin polarization.
  • Demonstrates XMCD is highly anisotropic and decoupled from weak magnetic canting in α-Fe₂O₃.
  • Proposes on-site Faraday tensors to describe anomalous XMCD, a model applicable to other altermagnets.
  • Enables reconstruction of complete vectorial maps of nanoscale spin textures for spintronics and magnonics.

Why it matters

This work clarifies the origin of XMCD in altermagnets, a crucial tool for validating this emerging material class. By providing a new understanding and method for mapping spin textures, it opens doors for designing advanced spintronic and magnonic devices.

Original Abstract

Altermagnets are an emerging class of collinear antiferromagnets that exhibit unconventional spin-polarised electronic bands, potentially unlocking new functionalities that do not rely on spin-orbit coupling (SOC). Experimental signatures traditionally associated with spin polarisation, like X-ray magnetic circular dichroism (XMCD), are thus being used as a validation of altermagnetism. However, unlike altermagnetic spin-splitting, these responses require SOC and are not invariant under spin-space rotations. This brings into question the extent to which they can be considered direct signatures of altermagnetism. Here, we exploit the g-wave altermagnet $α$-Fe$_{2}$O$_{3}$ to demonstrate that XMCD is governed precisely by the spin-direction-induced symmetry breaking that altermagnetic spin groups are designed to ignore. Strikingly, the XMCD is highly anisotropic and is decoupled from the weak magnetic canting. We show that this anomalous XMCD can be described by on-site Faraday tensors capturing the locally uncompensated spin-orbital anisotropies - a scenario that can be applied to other altermagnets. Leveraging this, we reconstruct complete vectorial maps of nanoscale textures in $α$-Fe$_{2}$O$_{3}$ thin films, including domain walls and topological solitons, which are promising for building future spintronics and magnonics devices.

📬 Weekly AI Paper Digest

Get the top 10 AI/ML arXiv papers from the week — summarized, scored, and delivered to your inbox every Monday.