Condensed Matter Physics, 2020, vol. 23, No. 4, 43701
DOI:10.5488/CMP.23.43701
arXiv:2101.05150
Title:
Microscopic theory of high-temperature superconductivity in strongly correlated electronic systems
Author(s):
 
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N.M. Plakida
(Joint Institute for Nuclear Research, 141980 Dubna, Russia)
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A consistent microscopic theory of superconductivity for strongly correlated electronic systems is presented.
The Dyson equation for the normal and anomalous Green functions for the projected (Hubbard) electronic operators is derived.
To compare various mechanisms of pairing, the extended Hubbard model is considered where the intersite Coulomb repulsion
and the electron-phonon interaction are taken into account. We obtain the d-wave pairing with high-Tc induced by
the strong kinematical interaction of electrons with spin fluctuations, while the Coulomb repulsion and the electron-phonon interaction
are suppressed for the d-wave pairing. These results support the spin-fluctuation mechanism of high-temperature superconductivity
in cuprates previously proposed in phenomenological models.
Key words:
strongly correlated electron systems, Hubbard model, unconventional superconductivity, cuprate superconductors
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