English

Electron dynamics in the normal state of cuprates: spectral function, Fermi surface and ARPES data

Strongly Correlated Electrons 2016-12-21 v1

Abstract

An influence of the electron-phonon interaction on excitation spectrum and damping in a narrow band electron subsystem of cuprates has been investigated. Within the framework of the t-J model an approach to solving a problem of account of both strong electron correlations and local electron-phonon binding with characteristic Einstein mode ω0\omega _0 in the normal state has been presented. In approximation Hubbard-I it was found an exact solution to the polaron bands. We established that in the low-dimensional system with a pure kinematic part of Hamiltonian a complicated excitation spectrum is realized. It is determined mainly by peculiarities of the lattice Green's function. In the definite area of the electron concentration and hopping integrals a correlation gap may be possible on the Fermi level. Also, in specific cases it is observed a doping evolution of the Fermi surface. We found that the strong electron-phonon binding enforces a degree of coherence of electron-polaron excitations near the Fermi level and spectrum along the nodal direction depends on wave vector module weakly. It corresponds to ARPES data. A possible origin of the experimentally observed kink in the nodal direction of cuprates is explained by fine structure of the polaron band to be formed near the mode -ω0\omega _0.

Keywords

Cite

@article{arxiv.1509.08607,
  title  = {Electron dynamics in the normal state of cuprates: spectral function, Fermi surface and ARPES data},
  author = {E. E. Zubov},
  journal= {arXiv preprint arXiv:1509.08607},
  year   = {2016}
}
R2 v1 2026-06-22T11:07:48.307Z