English

Insights on the cuprate high energy anomaly observed in ARPES

Strongly Correlated Electrons 2011-04-06 v1

Abstract

Recently, angle-resolved photoemission spectroscopy has been used to highlight an anomalously large band renormalization at high binding energies in cuprate superconductors: the high energy "waterfall" or high energy anomaly (HEA). The anomaly is present for both hole- and electron-doped cuprates as well as the half-filled parent insulators with different energy scales arising on either side of the phase diagram. While photoemission matrix elements clearly play a role in changing the aesthetic appearance of the band dispersion, i.e. creating a "waterfall"-like appearance, they provide an inadequate description for the physics that underlies the strong band renormalization giving rise to the HEA. Model calculations of the single-band Hubbard Hamiltonian showcase the role played by correlations in the formation of the HEA and uncover significant differences in the HEA energy scale for hole- and electron-doped cuprates. In addition, this approach properly captures the transfer of spectral weight accompanying doping in a correlated material and provides a unifying description of the HEA across both sides of the cuprate phase diagram. We find that the anomaly demarcates a transition, or cross-over, from a quasiparticle band at low binding energies near the Fermi level to valence bands at higher binding energy, assumed to be of strong oxygen character.

Keywords

Cite

@article{arxiv.1004.4685,
  title  = {Insights on the cuprate high energy anomaly observed in ARPES},
  author = {B. Moritz and S. Johnston and T. P. Devereaux},
  journal= {arXiv preprint arXiv:1004.4685},
  year   = {2011}
}

Comments

5 pages, 5 figures; Submitted to the Proceedings of CORPES09