A Topological Kagome Magnet in High Entropy Form
ORAL
Abstract
Topological kagome magnets RMn6Sn6 (R = rare earth element) attract numerous interests due to their non-trivial band topology and room-temperature magnetism[1]. On the other hand, increasing attention is focused on the magnetic properties of high entropy materials, as the coexistence of multiple magnetic elements is expected to generate unconventional complex magnetic orderings. However, the study on single crystalline high entropy topological magnets is still lacking.
In this talk, we report a high entropy version of topological kagome magnet, (Gd0.38Tb0.27Dy0.20Ho0.15)Mn6Sn6. Such a high entropy material exhibits multiple spin reorientation transitions, which is different from all the related parent compounds and can be understood in terms of competing magnetic interactions enabled by the high entropy effect. Furthermore, we also observed an intrinsic anomalous Hall effect, indicating that the high entropy phase preserves the non-trivial band topology. These results suggest that high entropy may provide a route to engineer the magnetic structure without breaking the band topology, and expand the horizon of topological materials.
[1] Yin, J.-X. et al. Quantum-limit Chern topological magnetism in TbMn6Sn6. Nature 583, 533–536 (2020).
In this talk, we report a high entropy version of topological kagome magnet, (Gd0.38Tb0.27Dy0.20Ho0.15)Mn6Sn6. Such a high entropy material exhibits multiple spin reorientation transitions, which is different from all the related parent compounds and can be understood in terms of competing magnetic interactions enabled by the high entropy effect. Furthermore, we also observed an intrinsic anomalous Hall effect, indicating that the high entropy phase preserves the non-trivial band topology. These results suggest that high entropy may provide a route to engineer the magnetic structure without breaking the band topology, and expand the horizon of topological materials.
[1] Yin, J.-X. et al. Quantum-limit Chern topological magnetism in TbMn6Sn6. Nature 583, 533–536 (2020).
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Presenters
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Lujin Min
Pennsylvania State University
Authors
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Lujin Min
Pennsylvania State University
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Milos Sretenovic
Michigan State University
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Tom W Heitmann
University of Missouri, The Missouri Research Reactor and Department of Physics and Astronomy, University of Missouri, USA, University of Missouri Research Reactor, University of Missouri, Columbia MO USA
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Rui Zu
Pennsylvania State University
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Venkatraman Gopalan
Pennsylvania State University, Penn State University
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Xianglin Ke
Michigan State University
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Zhiqiang Mao
Pennsylvania State University