Revealing Spin and Spatial Symmetry Decoupling: New Insights into Magnetic Systems with Dzyaloshinskii-Moriya Interaction
Yuxuan Mu, Di Wang, Xiangang Wan

TL;DR
This paper demonstrates that in certain magnetic systems with Dzyaloshinskii-Moriya interaction, spin and spatial symmetries can decouple, extending the applicability of spin space groups and revealing new symmetry-preserving phenomena.
Contribution
It proves the existence of spin-only symmetry operations in coplanar and collinear spin configurations with DMI, expanding the understanding of magnetic symmetry classifications.
Findings
Spin-only operations hold in coplanar spin configurations with DMI.
Magnon systems preserve decoupled spin and spatial rotations regardless of DMI strength.
Novel symmetries could lead to new magnon transport phenomena.
Abstract
It is widely accepted that spin-orbit coupling (SOC) generally locks spin and spatial degrees of freedom, as a result, the spin, despite being an axial vector, is fixed and cannot rotate independently, and the magnetic system should be described by magnetic space groups (MSGs). While as a new type of group, spin space groups (SSGs) have been introduced to approximately describe the symmetry of magnetic systems with negligible SOC, and received significant attention recently. In this work, we prove that in two cases of coplanar spin configurations, there are spin-only operations that strictly hold even with considerable Dzyaloshinskii-Moriya interaction (DMI), and the symmetry of their spin models could be described by the spin-coplanar SSG. In addition, we also find that for spin-collinear cases, regardless the strength of DMI, the magnon systems within the framework of linear spin wave…
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