Enhancement Of Superconductivity Due To Kinetic-Energy Effect In The Strongly Correlated Phase Of The Two-Dimensional Hubbard Model

PHYSICS LETTERS A(2021)

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Abstract
We investigated kinetic properties of correlated pairing states in strongly correlated phase of the Hubbard model in two space dimensions. We employ an optimization variational Monte Carlo method, where we use the improved wave function psi(lambda) = e(psi G)(-lambda K) for the Gutzwiller wave function psi G with K being the kinetic part of the Hamiltonian. The Gutzwiller-BCS state is stabilized as the potential energy driven superconductivity because the Coulomb interaction energy is lowered while the kinetic energy increases in this state. In contrast, we show that in the psi(lambda)-BCS wave function psi(lambda-)(BCS) = e(-lambda K) P-G psi(BCS), the Coulomb energy increases and instead the kinetic energy is lowered in the strongly correlated phase where the Coulomb repulsive interaction U is large. The correlated superconducting state is realized as a kinetic energy driven pairing state and this indicates the enhancement of superconductivity due to kineticenergy effect. (C) 2021 Elsevier B.V. All rights reserved.
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Key words
Strongly correlated electron system, High-temperature superconductivity, Hubbard model, Mechanism of superconductivity, Optimization Monte Carlo method, Kinetic energy driven pairing
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