Fluctuation-driven topological Hall effect in room-temperature itinerant helimagnet Fe<sub>3</sub>Ga<sub>4</sub>.
basic_science · Level V
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- Record sourced from PubMed, PMID 40274780.
- Also identified by DOI 10.1038/s41467-025-58933-w and PMC identifier 12022299.
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Abstract
The topological Hall effect (THE) is a hallmark of a non-trivial geometric spin arrangement in a magnetic metal, originating from a finite scalar spin chirality (SSC). The associated Berry phase is often a consequence of non-coplanar magnetic structures identified by multiple k-vectors. For single - k magnetic structures however with zero SSC, the emergence of a finite topological Hall signal presents a conceptual challenge. Here, we report that a fluctuation-driven mechanism involving chiral magnons is responsible for the observed THE in a low-symmetry compound, monoclinic Fe<sub>3</sub>Ga<sub>4</sub>. Through neutron scattering experiments, we discovered several nontrivial magnetic phases in this system. In our focus is the helical spiral phase at room temperature, which transforms into a transverse conical state in applied magnetic field, supporting a significant THE signal up to and above room temperature. Our work offers a fresh perspective in the search for novel materials with intertwined topological magnetic and transport properties.