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arXiv · cond-mat/0109008

Theory of high-T_c superconductivity based on the fermion-condensation quantum phase transition

Abstract

A theory of high temperature superconductivity based on the combination of the fermion-condensation quantum phase transition and the conventional theory of superconductivity is presented. This theory describes maximum values of the superconducting gap which can be as big as $Δ_1\sim 0.1ε_F$, with $ε_F$ being the Fermi level. We show that the critical temperature $2T_c\simeqΔ_1$. If there exists the pseudogap above $T_c$ then $2T^*\simeqΔ_1$, and $T^*$ is the temperature at which the pseudogap vanishes. A discontinuity in the specific heat at $T_c$ is calculated. The transition from conventional superconductors to high-$T_c$ ones as a function of the doping level is investigated. The single-particle excitations and their lineshape are also considered.

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BibTeXRIS

M. Ya. Amusia, S. A. Artamonov, V. R. Shaginyan. 2001-09-01. Theory of high-T_c superconductivity based on the fermion-condensation quantum phase transition. https://doi.org/10.1134/1.1427130

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