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Orbital-selective Kondo lattice and enigmatic electrons emerging from inside the antiferromagnetic phase of a heavy fermion. | LitMetric

AI Article Synopsis

  • Heavy-fermion systems exhibit unique electronic behaviors due to the interplay of localized and itinerant electrons, with questions around the existence of Kondo lattices in magnetically ordered phases.
  • Utilizing advanced techniques like scanning tunneling microscopy and neutron scattering, the study investigates the electronic structures in the antiferromagnetic material USb, revealing a significant energy gap where Kondo hybridization appears below around 80 K.
  • The findings suggest a distinct separation of antiferromagnetism and Kondo lattice influence across different electronic orbitals, introducing the idea of orbital selectivity, and highlight a unique transition at 45 K that could be connected to a "hidden-order" phase found in related materials.

Article Abstract

Novel electronic phenomena frequently form in heavy-fermions because of the mutual localized and itinerant nature of -electrons. On the magnetically ordered side of the heavy-fermion phase diagram, -moments are expected to be localized and decoupled from the Fermi surface. It remains ambiguous whether Kondo lattice can develop inside the magnetically ordered phase. Using spectroscopic imaging with scanning tunneling microscope, complemented by neutron scattering, x-ray absorption spectroscopy, and dynamical mean field theory, we probe the electronic states in antiferromagnetic USb. We visualize a large gap in the antiferromagnetic phase within which Kondo hybridization develops below ~80 K. Our calculations indicate the antiferromagnetism and Kondo lattice to reside predominantly on different -orbitals, promoting orbital selectivity as a new conception into how these phenomena coexist in heavy-fermions. Finally, at 45 K, we find a novel first order-like transition through abrupt emergence of nontrivial 5-electronic states that may resemble the "hidden-order" phase of URuSi.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6799987PMC
http://dx.doi.org/10.1126/sciadv.aaw9061DOI Listing

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