Correlation driven near-flat band Stoner excitations in a Kagome magnet

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作者
Abhishek Nag
Yiran Peng
Jiemin Li
S. Agrestini
H. C. Robarts
Mirian García-Fernández
A. C. Walters
Qi Wang
Qiangwei Yin
Hechang Lei
Zhiping Yin
Ke-Jin Zhou
机构
[1] Diamond Light Source,Department of Physics and Center for Advanced Quantum Studies
[2] Beijing Normal University,Department of Physics and Beijing Key Laboratory of Opto
[3] Beijing National Laboratory for Condensed Matter Physics and Institute of Physics,Electronic Functional Materials & Micro
[4] Chinese Academy of Sciences,Nano Devices
[5] H. H. Wills Physics Laboratory,undefined
[6] University of Bristol,undefined
[7] Renmin University of China,undefined
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摘要
Among condensed matter systems, Mott insulators exhibit diverse properties that emerge from electronic correlations. In itinerant metals, correlations are usually weak, but can also be enhanced via geometrical confinement of electrons, that manifest as ‘flat’ dispersionless electronic bands. In the fast developing field of topological materials, which includes Dirac and Weyl semimetals, flat bands are one of the important components that can result in unusual magnetic and transport behaviour. To date, characterisation of flat bands and their magnetism is scarce, hindering the design of novel materials. Here, we investigate the ferromagnetic Kagomé semimetal Co3Sn2S2 using resonant inelastic X-ray scattering. Remarkably, nearly non-dispersive Stoner spin excitation peaks are observed, sharply contrasting with the featureless Stoner continuum expected in conventional ferromagnetic metals. Our band structure and dynamic spin susceptibility calculations, and thermal evolution of the excitations, confirm the nearly non-dispersive Stoner excitations as unique signatures of correlations and spin-polarized electronic flat bands in Co3Sn2S2. These observations serve as a cornerstone for further exploration of band-induced symmetry-breaking orders in topological materials.
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