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Spin fluctuations of the uranium 5f-electrons in UN according to 14N-NMR data
Author(s) -
В. В. Оглобличев,
S. V. Verkhovskiǐ,
Alexei Potapov,
A. Yu. Germov,
A. F. Sadykov
Publication year - 2019
Publication title -
journal of physics. conference series
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.21
H-Index - 85
eISSN - 1742-6596
pISSN - 1742-6588
DOI - 10.1088/1742-6596/1389/1/012082
Subject(s) - knight shift , uranium , condensed matter physics , electron , chemistry , relaxation (psychology) , spin–lattice relaxation , paramagnetism , spin (aerodynamics) , motional narrowing , physics , spectral line , nuclear physics , superconductivity , psychology , social psychology , thermodynamics , astronomy
The results of the study of the paramagnetic region of uranium mononitride by the method of nuclear magnetic resonance (NMR)of 14 N nuclei are presented.The 14 N NMR spectra, the Knight shifts K , the spin-lattice relaxation times T 1 have been obtained within the temperature range T = 60 – 375 K and at magnetic fields 92.8 kOe and 117.5 kOe. The temperature dependence of the Knight shift of the 14 N line is proportional to the spin susceptibility χ of 5 f -electrons of uranium. The ratio of the experimentally determined value T T 1 K 2 to the theoretically calculated value of the Korringa contribution is 21.5 (at T = 295 K), which is significantly more than for common metals. This suggests that nuclear relaxation is based on the same mechanism as the Knight shift, namely, the indirect connection between the 14 N nuclei and the localized magnetic moments of uranium through conduction electrons. The experimental results on the T -dependence of the spin-lattice relaxation rate of 14 N also do not contradict the assumption that uranium mononitride is a concentrated Kondo system.

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