Electron-phonon coupling and polarons in the parent cuprate La<sub>2</sub>CuO<sub>4</sub> from first-principles calculations

ORAL

Abstract

In the parent (undoped) phases of high-Tc cuprate superconductors, there is abundant experimental evidence for strong electron-phonon (e-ph) interactions, which result in broad photoemission spectra. The microscopic origin of these strong e-ph interactions in cuprates is not fully understood and their quantitative modeling remains challenging. In this talk, we will present first-principles e-ph calculations in the parent-compound lanthanum cuprate (La2CuO4, LCO) based on Hubbard-corrected density functional theory. Our calculations identify two classes of longitudinal optical (LO) phonons strongly coupled with hole states in LCO. Their energies (50-80 meV) are consistent with spectral signatures in photoemission experiments on doped cuprates. The associated electronic spectral functions in the valence band, obtained with a finite-temperature cumulant approach to describe high-order e-ph interactions, exhibit a significant broadening as well as satellite peaks due to polaron effects. The main features of the electron self-energy measured in angle-resolved photoemission spectroscopy (ARPES) are well reproduced in our calculations. Our results provide a quantitative evidence for strong e-ph interactions in parent cuprates and refine existing models by showing the importance of nonbonding orbitals and coupling with apical oxygen lattice vibrations.

Presenters

  • Benjamin K Chang

    • California Institute of Technology

Authors

  • Benjamin K Chang

    • California Institute of Technology
  • Iurii Timrov

    • Ecole Polytechnique Federale de Lausanne
  • Jinsoo Park

    • Caltech
    • The University of Chicago
  • Jin-Jian Zhou

    • Beijing Institute of Technology
    • School of Physics, Beijing Institute of Technology
  • Nicola Marzari

    • Ecole Polytechnique Federale de Lausanne
    • THEOS, EPFL; NCCR MARVEL; LSM Paul Scherrer Insitut
    • EPFL
    • THEOS, EPFL; NCCR, MARVEL; LMS, Paul Scherrer Institut
  • Marco Bernardi

    • Caltech