Please use this identifier to cite or link to this item: http://elar.urfu.ru/handle/10995/130626
Title: Transition from Pauli paramagnetism to Curie-Weiss behavior in vanadium
Authors: Belozerov, A. S.
Katanin, A. A.
Anisimov, V. I.
Issue Date: 2023
Publisher: American Physical Society
Citation: Belozerov, AS, Katanin, AA & Anisimov, VI 2023, 'Transition from Pauli paramagnetism to Curie-Weiss behavior in vanadium', Physical Review B, Том. 107, № 3, 035116. https://doi.org/10.1103/PhysRevB.107.035116
Belozerov, A. S., Katanin, A. A., & Anisimov, V. I. (2023). Transition from Pauli paramagnetism to Curie-Weiss behavior in vanadium. Physical Review B, 107(3), [035116]. https://doi.org/10.1103/PhysRevB.107.035116
Abstract: We study electron correlations and their impact on magnetic properties of bcc vanadium by a combination of density functional and dynamical mean-field theory. The calculated uniform magnetic susceptibility in bcc structure is of Pauli type at low temperatures, while it obeys the Curie-Weiss law at higher temperatures. Thus, we qualitatively reproduce the experimental temperature dependence of magnetic susceptibility without introducing the martensitic phase transition. Our results for local spin-spin correlation function and local susceptibility reveal that the Curie-Weiss behavior appears due to partial formation of local magnetic moments, which originate from t2g states and occur due to local spin correlations caused by Hund's rule coupling. At the same time, the fermionic quasiparticles remain well defined, while the formation of local moments is accompanied by a deviation from the Fermi-liquid behavior. In particular, the self-energy of the t2g states shows the nonanalytic frequency dependence, which is a characteristic of the spin-freezing behavior, while the quasiparticle damping changes approximately linearly with temperature in the intermediate temperature range 200-700 K. By analyzing the momentum dependence of static magnetic susceptibility, we find incommensurate magnetic correlations, which may provide a mechanism for unconventional superconductivity at low temperatures. © 2023 American Physical Society.
Keywords: CRYSTAL STRUCTURE
DENSITY FUNCTIONAL THEORY
FERMI LIQUIDS
MAGNETIC MOMENTS
MEAN FIELD THEORY
TEMPERATURE DISTRIBUTION
VANADIUM
BCC STRUCTURE
CURIE WEISS LAW
CURIE-WEISS BEHAVIORS
DENSITY FUNCTIONALS
DYNAMICAL MEAN-FIELD THEORY
HIGHEST TEMPERATURE
LOCAL SPIN
LOWS-TEMPERATURES
PAULI PARAMAGNETISM
TEMPERATURE DEPENDENCE
MAGNETIC SUSCEPTIBILITY
URI: http://elar.urfu.ru/handle/10995/130626
Access: info:eu-repo/semantics/openAccess
SCOPUS ID: 85146325951
WOS ID: 000918392800003
PURE ID: 33967698
ISSN: 2469-9950
DOI: 10.1103/PhysRevB.107.035116
Sponsorship: Ministry of Education and Science of the Russian Federation, Minobrnauka: AAAA-A18-118020190098-5; Russian Science Foundation, RSF: 19-12-00012
The DFT+DMFT calculations were supported by the Russian Science Foundation (Project No. 19-12-00012). The calculations of the particle-hole bubble were supported by the Ministry of Science and Higher Education of the Russian Federation (theme “Electron” No. AAAA-A18-118020190098-5).
RSCF project card: 19-12-00012
Appears in Collections:Научные публикации ученых УрФУ, проиндексированные в SCOPUS и WoS CC

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