Disentangling the unusual magnetic anisotropy of the near-room-temperature ferromagnet FeGeTe
arXiv:2512.08722 · doi:10.1002/adfm.202402551
Abstract
In the quest for two-dimensional conducting materials with high ferromagnetic ordering temperature the new family of the layered FeGeTe compounds, especially the near-room-temperature ferromagnet FeGeTe, receives a significant attention. FeGeTe features a peculiar spin reorientation transition at K suggesting a non-trivial temperature evolution of the magnetic anisotropy (MA) - one of the main contributors to the stabilization of the magnetic order in the low-D systems. An electron spin resonance (ESR) spectroscopic study reported here provides quantitative insights into the unusual magnetic anisotropy of FeGeTe. At high temperatures the total MA is mostly given by the demagnetization effect with a small contribution of the counteracting intrinsic magnetic anisotropy of an easy-axis type, whose growth below a characteristic temperature K renders the sample seemingly isotropic at . Below one further temperature K the intrinsic MA becomes even more complex. Importantly, all the characteristic temperatures found in the ESR experiment match those observed in transport measurements, suggesting an inherent coupling between magnetic and electronic degrees of freedom in FeGeTe. This finding together with the observed signatures of the intrinsic two-dimensionality should facilitate optimization routes for the use of FeGeTe in the magneto-electronic devices, potentially even in the monolayer limit.
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Cited by in corpus (4)
- Magnetic Anisotropy in Two-dimensional van der Waals Magnetic Materials and Their Heterostructures: Importance, Mechanisms, and Opportunities
- Electron Spin Resonance Spectroscopy on Magnetic Van der Waals Compounds
- Ferromagnetic Resonance Spectroscopy on the Kagome Magnet MgMnSn
- Magnetic-field tuning of the spin dynamics in the quasi-2D van der Waals antiferromagnet CuCrPS