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Non-Fermi-liquid behavior in UCu4+xAl8−x compounds

Authors :
Vivien Zapf
H. Nakotte
Karunakar Kothapalli
Farzana Nasreen
R. F. Jardim
M. S. Torikachvili
Source :
Physica B: Condensed Matter. 406:2061-2069
Publication Year :
2011
Publisher :
Elsevier BV, 2011.

Abstract

We report on experimental studies of the Kondo physics and the development of non-Fermi-liquid scaling in UCu4+xAl8−x family. We studied 7 different compounds with compositions between x=0 and 2. We measured electrical transport (down to 65 mK) and thermoelectric power (down to 1.8 K) as a function of temperature, hydrostatic pressure, and/or magnetic field. Compounds with Cu content below x=1.25 exhibit long-range antiferromagnetic order at low temperatures. Magnetic order is suppressed with increasing Cu content and our data indicate a possible quantum critical point at xcr≈1.15. For compounds with higher Cu content, non-Fermi-liquid behavior is observed. Non-Fermi-liquid scaling is inferred from electrical resistivity results for the x=1.25 and 1.5 compounds. For compounds with even higher Cu content, a sharp kink occurs in the resistivity data at low temperatures, and this may be indicative of another quantum critical point that occurs at higher Cu compositions. For the magnetically ordered compounds, hydrostatic pressure is found to increase the Neel temperature, which can be understood in terms of the Kondo physics. For the non-magnetic compounds, application of a magnetic field promotes a tendency toward Fermi-liquid behavior. Thermoelectric power was analyzed using a two-band Lorentzian model, and the results indicate one fairly narrow band (10 meV and below) and a second broad band (around hundred meV). The results imply that there are two relevant energy scales that need to be considered for the physics in this family of compounds.

Details

ISSN :
09214526
Volume :
406
Database :
OpenAIRE
Journal :
Physica B: Condensed Matter
Accession number :
edsair.doi...........f9a9dc7529aa55f9d98ce4aac469dea6
Full Text :
https://doi.org/10.1016/j.physb.2011.01.038