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In this account, we will give an overview of our research progress on novel quantum properties in topological quantum materials with kagome lattice. Here, there are mainly two categories of kagome materials: magnetic kagome materials and nonmagnetic ones. On one hand, magnetic kagome materials mainly focus on the 3d transition-metal-based kagome systems, including Fe₃Sn₂, Co₃Sn₂S₂, YMn6Sn6, FeSn, and CoSn. The interplay between magnetism and topological bands manifests vital influence on the electronic response. For example, the existence of massive Dirac or Weyl fermions near the Fermi level signicantly enhances the magnitude of Berry curvature in momentum space, leading to a large intrinsic anomalous Hall effect. In addition, the peculiar frustrated structure of kagome materials enables them to host a topologically protected skyrmion lattice or noncoplaner spin texture, yielding a topological Hall effect that arises from the realspace Berry phase. On the other hand, nonmagnetic kagome materials in the absence of longrange magnetic order include CsV3Sb5 with the coexistence of superconductivity, charge density wave state, and band topology and van der Waals semiconductor Pd₃P₂S₈. For these two kagome materials, the tunability of electric response in terms of high pressure or carrier doping helps to reveal the interplay between electronic correlation effects and band topology and discover the novel emergent quantum phenomena in kagome materials.
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Qi Wang
ShanghaiTech University
Hechang Lei
Renmin University of China
Yanpeng Qi
ShanghaiTech University
Accounts of Materials Research
ShanghaiTech University
Renmin University of China
Max Planck Institute for Chemical Physics of Solids
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Wang et al. (Thu,) studied this question.
synapsesocial.com/papers/68e63e25b6db6435875d007e — DOI: https://doi.org/10.1021/accountsmr.3c00291
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