Renormalization of dispersion in electron-doped bilayer cuprate superconductors
arXiv:2112.04078 · doi:10.1007/s10909-022-02737-5
Abstract
The renormalization of the electrons in cuprate superconductors is characterized by the kink in the quasiparticle dispersion. Here the bilayer coupling effect on the quasiparticle dispersion kink in the electron-doped bilayer cuprate superconductors is studied based on the kinetic-energy-driven superconductivity. It is shown that the kink in the quasiparticle dispersion is present all around the electron Fermi surface, as the quasiparticle dispersion kink in the single-layer case. However, in comparison with the corresponding single-layer case, the kink effect in the quasiparticle dispersion at around the antinodal region becomes the most pronounced, indicating that the kink effect in the quasiparticle dispersion at around the antinodal region is enhanced by the bilayer coupling.
6 pages, 3 figures
References in corpus (9)
- Charge ordering in the electron-doped superconductor Nd2-xCexCuO4
- Probing topological quantum matter with scanning tunnelling microscopy
- Doping dependent charge order correlations in electron-doped cuprates
- The magnetic nature of superconductivity in doped cuprates
- Kinetic-energy driven superconductivity in cuprate superconductors
- Angle-resolved photoemission spectroscopy of electron-doped cuprate superconductors: Isotropic electron-phonon coupling
- Momentum-Resolved Visualization of Electronic Evolution in Doping a Mott Insulator
- Novel Electronic State and Superconductivity in the Electron-Doped High-Tc T'-Superconductors
- Analysis of the spectral function of Nd1.85Ce0.15CuO4, obtained by angle resolved photoemission spectroscopy