Spin-reorientation as a switch for electronic topology in van der Waals ferromagnets

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Bera, Satyabrata, Chatterjee, Sudipta, Pradhan, Suman Kalyan, Pradhan, Subhadip, Bera, Arnab, Kalimuddin, Sk, Nandy, Ashis K., Mondal, Mintu
Format: Preprint
Published: 2026
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866910061846069248
author Bera, Satyabrata
Chatterjee, Sudipta
Pradhan, Suman Kalyan
Pradhan, Subhadip
Bera, Arnab
Kalimuddin, Sk
Nandy, Ashis K.
Mondal, Mintu
author_facet Bera, Satyabrata
Chatterjee, Sudipta
Pradhan, Suman Kalyan
Pradhan, Subhadip
Bera, Arnab
Kalimuddin, Sk
Nandy, Ashis K.
Mondal, Mintu
contents The interplay between spin reorientation and topological electronic structure in two-dimensional (2D) van der Waals (vdW) ferromagnets is central to understanding how magnetic anisotropy shapes charge transport. Although spin-reorientation transitions (SRTs) are common in 2D metallic ferromagnets, their impact on electronic-topology-driven thermodynamic and transport properties remains largely unexplored. Here we investigate this issue in Fe$_4$GeTe$_2$ (F4GT), a room-temperature quasi-2D vdW ferromagnet, using temperature-dependent magnetization, specific heat, magnetotransport, and thermoelectric measurements. Magnetization and specific heat establish a reorientation of the magnetic easy axis near $T_{\mathrm{SRT}} \sim 100$~K, in addition to ferromagnetic ordering at $T_C \sim 270$~K. Across the SRT, the Seebeck coefficient and anisotropic magnetoresistance show clear anomalies, indicating Fermi-surface reconstruction. The magnetoresistance exhibits a two-step field dependence: a low-field enhancement near the SRT associated with scattering from canted spins and evolving domains, followed by a higher-field negative response as spin fluctuations are suppressed. The simultaneous sign change of the ordinary Hall coefficient $R_0$ and the sharp anomaly in the anomalous Hall resistivity $ρ^{A}_{yx}$ further point to a temperature-driven modification of the underlying band topology. Analysis of the anomalous Hall conductivity $σ^{A}_{xy}$ and the scaling of $ρ^{A}_{yx}$ shows that the Berry-curvature-driven anomalous Hall response below $T_{\mathrm{SRT}}$ is strongly modified above the transition. Our results identify spin reorientation as an internal control parameter for switching between distinct topological transport regimes in a 2D vdW ferromagnet, providing a symmetry-controlled route to engineer spin-polarized electronic states and domain-texture-driven functionalities.
format Preprint
id arxiv_https___arxiv_org_abs_2603_20457
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Spin-reorientation as a switch for electronic topology in van der Waals ferromagnets
Bera, Satyabrata
Chatterjee, Sudipta
Pradhan, Suman Kalyan
Pradhan, Subhadip
Bera, Arnab
Kalimuddin, Sk
Nandy, Ashis K.
Mondal, Mintu
Strongly Correlated Electrons
The interplay between spin reorientation and topological electronic structure in two-dimensional (2D) van der Waals (vdW) ferromagnets is central to understanding how magnetic anisotropy shapes charge transport. Although spin-reorientation transitions (SRTs) are common in 2D metallic ferromagnets, their impact on electronic-topology-driven thermodynamic and transport properties remains largely unexplored. Here we investigate this issue in Fe$_4$GeTe$_2$ (F4GT), a room-temperature quasi-2D vdW ferromagnet, using temperature-dependent magnetization, specific heat, magnetotransport, and thermoelectric measurements. Magnetization and specific heat establish a reorientation of the magnetic easy axis near $T_{\mathrm{SRT}} \sim 100$~K, in addition to ferromagnetic ordering at $T_C \sim 270$~K. Across the SRT, the Seebeck coefficient and anisotropic magnetoresistance show clear anomalies, indicating Fermi-surface reconstruction. The magnetoresistance exhibits a two-step field dependence: a low-field enhancement near the SRT associated with scattering from canted spins and evolving domains, followed by a higher-field negative response as spin fluctuations are suppressed. The simultaneous sign change of the ordinary Hall coefficient $R_0$ and the sharp anomaly in the anomalous Hall resistivity $ρ^{A}_{yx}$ further point to a temperature-driven modification of the underlying band topology. Analysis of the anomalous Hall conductivity $σ^{A}_{xy}$ and the scaling of $ρ^{A}_{yx}$ shows that the Berry-curvature-driven anomalous Hall response below $T_{\mathrm{SRT}}$ is strongly modified above the transition. Our results identify spin reorientation as an internal control parameter for switching between distinct topological transport regimes in a 2D vdW ferromagnet, providing a symmetry-controlled route to engineer spin-polarized electronic states and domain-texture-driven functionalities.
title Spin-reorientation as a switch for electronic topology in van der Waals ferromagnets
topic Strongly Correlated Electrons
url https://arxiv.org/abs/2603.20457