Giant Topological Hall Effect in Magnetic Weyl Metal Mn$_{2}$Pd$_{0.5}$Ir$_{0.5}$Sn

Fuente: arXiv
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Autores principales: Bhattacharya, Arnab, Ahmed, Afsar, PC, Sreeparvathy, Kurebayashi, Daichi, Tretiakov, Oleg A., Satpati, Biswarup, DuttaGupta, Samik, Alam, Aftab, Das, Indranil
Formato: Preprint
Publicado: 2024
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author Bhattacharya, Arnab
Ahmed, Afsar
PC, Sreeparvathy
Kurebayashi, Daichi
Tretiakov, Oleg A.
Satpati, Biswarup
DuttaGupta, Samik
Alam, Aftab
Das, Indranil
author_facet Bhattacharya, Arnab
Ahmed, Afsar
PC, Sreeparvathy
Kurebayashi, Daichi
Tretiakov, Oleg A.
Satpati, Biswarup
DuttaGupta, Samik
Alam, Aftab
Das, Indranil
contents The synergy between real and reciprocal space topology is anticipated to yield a diverse array of topological properties in quantum materials. We address this pursuit by achieving topologically safeguarded magnetic order in novel Weyl metallic Heusler alloy, Mn$_{2}$Pd$_{0.5}$Ir$_{0.5}$Sn. The system possesses non-centrosymmetric D$_{2d}$ crystal symmetry with notable spin-orbit coupling effects. Our first principles calculations confirm the topological non-trivial nature of band structure, including 42 pairs of Weyl nodes at/near the Fermi level, offering deeper insights into the observed anomalous Hall effect mediated by intrinsic Berry curvature. A unique canted magnetic ordering facilitates such rich topological features, manifesting through an exceptionally large topological Hall effect at low fields. The latter is sustained even at room temperature and compared with other known topological magnetic materials. Detailed micromagnetic simulations demonstrate the possible existence of an antiskyrmion lattice. Our results underscore the $D_{2d}$ Heusler magnets as a possible platform to explore the intricate interplay of non-trivial topology across real and reciprocal spaces to leverage a plethora of emergent properties for spintronic applications.
format Preprint
id arxiv_https___arxiv_org_abs_2410_15011
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Giant Topological Hall Effect in Magnetic Weyl Metal Mn$_{2}$Pd$_{0.5}$Ir$_{0.5}$Sn
Bhattacharya, Arnab
Ahmed, Afsar
PC, Sreeparvathy
Kurebayashi, Daichi
Tretiakov, Oleg A.
Satpati, Biswarup
DuttaGupta, Samik
Alam, Aftab
Das, Indranil
Materials Science
The synergy between real and reciprocal space topology is anticipated to yield a diverse array of topological properties in quantum materials. We address this pursuit by achieving topologically safeguarded magnetic order in novel Weyl metallic Heusler alloy, Mn$_{2}$Pd$_{0.5}$Ir$_{0.5}$Sn. The system possesses non-centrosymmetric D$_{2d}$ crystal symmetry with notable spin-orbit coupling effects. Our first principles calculations confirm the topological non-trivial nature of band structure, including 42 pairs of Weyl nodes at/near the Fermi level, offering deeper insights into the observed anomalous Hall effect mediated by intrinsic Berry curvature. A unique canted magnetic ordering facilitates such rich topological features, manifesting through an exceptionally large topological Hall effect at low fields. The latter is sustained even at room temperature and compared with other known topological magnetic materials. Detailed micromagnetic simulations demonstrate the possible existence of an antiskyrmion lattice. Our results underscore the $D_{2d}$ Heusler magnets as a possible platform to explore the intricate interplay of non-trivial topology across real and reciprocal spaces to leverage a plethora of emergent properties for spintronic applications.
title Giant Topological Hall Effect in Magnetic Weyl Metal Mn$_{2}$Pd$_{0.5}$Ir$_{0.5}$Sn
topic Materials Science
url https://arxiv.org/abs/2410.15011