Frustrated rare-earth-based intermetallics provide a promising platform for emergent magnetotransport properties through exchange coupling between conduction electrons and localized rare-earth magnetic moments. Metamagnetism, the abrupt change of magnetization under an external magnetic field, is a signature of first-order magnetic phase transitions; recently, metamagnetic transitions in frustrated rare earth intermetallics have attracted interest for their accompanying nontrivial spin structures (e.g., skyrmions) and associated nonlinear and topological Hall effects (THE). Here, we present metamagnetism-induced Hall anomalies in single-crystalline ErGa, which recalls features arising from the THE but wherein the strong Ising-type anisotropy of Er moments prohibits noncoplanar spin structures. We show that the observed anomalies are neither due to anomalous Hall effect nor THE; instead, can be accounted for via 4f-5d interactions which produce a band-dependent mobility modulation. This leads to a pronounced multiband Hall response across the magnetization process-a metamagnetic multiband Hall effect that resembles a topological-Hall-like response but without nontrivial origins. The present findings may be of general relevance in itinerant metamagnetic systems regardless of coplanar/noncoplanar nature of spins and are important for the accurate identification of Hall signals due to emergent magnetic fields.
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http://dx.doi.org/10.1073/pnas.2318411121 | DOI Listing |
J Phys Condens Matter
January 2025
Department of Chemistry, Indian Institute of Technology Delhi, New Delhi 110016, India.
We report the detailed investigation of the magnetic, transport, and magnetocaloric effects (MCEs) of GdSbSe by magnetic susceptibilityχ(T), isothermal magnetization(), resistivityρ(T,H), and heat capacityCp(T)measurements, crystallizing in the ZrSiS-type tetragonal crystal system with space group P4/nmm. Temperature-dependent magnetic susceptibility measurements revealed long-range antiferromagnetic ordering with two additional magnetic anomalies below Néel temperature (TN≈8.6K), corroborated through magnetocaloric and specific heat studies.
View Article and Find Full Text PDFInorg Chem
December 2024
School of Physical Science and Technology, Southwest Jiaotong University, Chengdu 610031, China.
Kagome lattice materials are anticipated to exhibit unique properties stemming from the intricate interplay among geometry, magnetism, electronic correlation, and band topology. Here, we report a new ternary compound, ThVSn, which contains double-layer kagome networks composed of vanadium atoms. The compound crystallizes in an HfFeGe-type structure with cell parameters of = = 5.
View Article and Find Full Text PDFThe coupling of conduction electrons and magnetic textures leads to quantum transport phenomena described by the language of emergent electromagnetic fields. For magnetic skyrmions, spin-swirling particle-like objects, an emergent magnetic field is produced by their topological winding, resulting in the conduction electrons exhibiting the topological Hall effect (THE). When the skyrmion lattice (SkL) acquires a drift velocity under conduction electron flow, an emergent electric field is also generated.
View Article and Find Full Text PDFNat Commun
July 2024
National Laboratory of Solid-State Microstructures, School of Physics, Nanjing University, Nanjing, 210093, China.
Fractional quantum Hall (FQH) states are exotic quantum many-body phases whose elementary charged excitations are anyons obeying fractional braiding statistics. While most FQH states are believed to have Abelian anyons, the Moore-Read type states with even denominators - appearing at half filling of a Landau level (LL) - are predicted to possess non-Abelian excitations with appealing potential in topological quantum computation. These states, however, depend sensitively on the orbital contents of the single-particle LL wavefunctions and the LL mixing.
View Article and Find Full Text PDFJ Phys Condens Matter
June 2024
School of Physical Sciences, Indian Institute of Technology Mandi, Mandi 175075 (H.P.), India.
We explore the magnetotransport and thermoelectric (Seebeck and Nernst coefficients) properties of MnSnC, an antiperovskite magnetic Nodal line semimetal. MnSnC shows paramagnetic (PM) to concurrent antiferromagnetic (AFM)/ferromagnetic (FM) transition at∼ 286 K. The electrical resistivity and Seebeck coefficient indicate the importance of electron-magnon scattering in the concurrent AFM/FM regime.
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