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Insight into the temperature dependent properties of the ferromagnetic Kondo lattice YbNiSn

Generalov, A. (author)
Lund University,Lunds universitet,MAX IV-laboratoriet,MAX IV Laboratory
Sokolov, D. A. (author)
Max Planck Institute for Chemical Physics of Solids,University of Edinburgh
Chikina, A. (author)
Dresden University of Technology
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Kucherenko, Yu (author)
G.V. Kurdyumov Institute for Metal Physics of National Academy of Sciences of Ukraine
Antonov, V. N. (author)
G.V. Kurdyumov Institute for Metal Physics of National Academy of Sciences of Ukraine
Bekenov, L. V. (author)
G.V. Kurdyumov Institute for Metal Physics of National Academy of Sciences of Ukraine
Patil, S. (author)
Banaras Hindu University
Huxley, A. D. (author)
University of Edinburgh
Allen, J. W. (author)
University of Michigan
Matho, K. (author)
University Grenoble Alpes
Kummer, K. (author)
European Synchrotron Radiation Facility
Vyalikh, D. V. (author)
Basque Foundation for Science,Donostia International Physics Center (DIPC),Saint Petersburg State University
Laubschat, C. (author)
Dresden University of Technology
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 (creator_code:org_t)
2017
2017
English.
In: Physical Review B. - 2469-9950. ; 95:18
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • Analyzing temperature dependent photoemission (PE) data of the ferromagnetic Kondo-lattice (KL) system YbNiSn in the light of the periodic Anderson model (PAM) we show that the KL behavior is not limited to temperatures below a temperature TK, defined empirically from resistivity and specific heat measurements. As characteristic for weakly hybridized Ce and Yb systems, the PE spectra reveal a 4f-derived Fermi level peak, which reflects contributions from the Kondo resonance and its crystal electric field (CEF) satellites. In YbNiSn this peak has an unusual temperature dependence: With decreasing temperature a steady linear increase of intensity is observed which extends over a large interval ranging from 100 K down to 1 K without showing any peculiarities in the region of TK∼TC=5.6 K. In the light of the single-impurity Anderson model (SIAM) this intensity variation reflects a linear increase of 4f occupancy with decreasing temperature, indicating an onset of Kondo screening at temperatures above 100 K. Within the PAM this phenomenon could be described by a non-Fermi-liquid-like T- linear damping of the self-energy which accounts phenomenologically for the feedback from the closely spaced CEF states.

Subject headings

NATURVETENSKAP  -- Fysik -- Den kondenserade materiens fysik (hsv//swe)
NATURAL SCIENCES  -- Physical Sciences -- Condensed Matter Physics (hsv//eng)

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