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The resurgence of interest in Kondo insulators has been driven by two major mysteries: the presence of metallic surface states and the observation of quantum oscillations. To further explore these mysteries, it is crucial to investigate another similar system beyond the two existing ones, SmB6and YbB12. Here, we address this by reporting on a Kondo insulator, U3Bi4Ni3. Our transport measurements reveal that a surface state emerges below 250 kelvin and dominates transport properties below 150 kelvin, which is well above the temperature scale of SmB6and YbB12. At low temperatures, the surface conductivity is about one order of magnitude higher than the bulk. The robustness of the surface state indicates that it is inherently protected. The similarities and differences between U3Bi4Ni3and the other two Kondo insulators will provide valuable insights into the nature of metallic surface states in Kondo insulators and their interplay with strong electron correlations.more » « lessFree, publicly-accessible full text available March 21, 2026
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Xu, Qiaozhi; Siddiquee, Hasan; Gould, Shannon; Zhu, Jiahui_Althena; Martinez, David_Alonso; Broyles, Christopher; Ni, Guangxin; Kong, Tai; Ran, Sheng (, Physical Review B)
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Chen, Tong; Siddiquee, Hasan; Xu, Qiaozhi; Rehfuss, Zack; Gao, Shiyuan; Lygouras, Chris; Drouin, Jack; Morano, Vincent; Avers, Keenan_E; Schmitt, Christopher_J; et al (, Physical Review Letters)
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Siddiquee, Hasan; Broyles, Christopher; Kotta, Erica; Liu, Shouzheng; Peng, Shiyu; Kong, Tai; Kang, Byungkyun; Zhu, Qiang; Lee, Yongbin; Ke, Liqin; et al (, Nature Communications)Abstract The interaction between strong correlation and Berry curvature is an open territory of in the field of quantum materials. Here we report large anomalous Hall conductivity in a Kondo lattice ferromagnet USbTe which is dominated by intrinsic Berry curvature at low temperatures. However, the Berry curvature induced anomalous Hall effect does not follow the scaling relation derived from Fermi liquid theory. The onset of the Berry curvature contribution coincides with the Kondo coherent temperature. Combined with ARPES measurement and DMFT calculations, this strongly indicates that Berry curvature is hosted by the flat bands induced by Kondo hybridization at the Fermi level. Our results demonstrate that the Kondo coherence of the flat bands has a dramatic influence on the low temperature physical properties associated with the Berry curvature, calling for new theories of scaling relations of anomalous Hall effect to account for the interaction between strong correlation and Berry curvature.more » « less
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