Effect of Coulomb repulsion on the London penetration depth in cuprate superconductors
arXiv:1912.04577 · doi:10.1088/1402-4896/ab8163
Abstract
We study the effect of Coulomb repulsion between oxygen holes on the London penetration depth based on the concept of spin-polaron nature of Fermi quasiparticles in cuprates superconductors. It is shown that for the generally accepted values of the parameters of the spin-fermion model, taking into account the Coulomb interaction, both the one-site Hubbard and interaction between the holes on next-nearest-neighbor oxygen ions , allows one to achieve a much better agreement of the calculated temperature dependencies of the value with the experimental data in LaSrCuO in a wide range around optimal doping.
17 pages, 3 figures
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