First Principles Electronic Structure Study of Ca<sub>2</sub>CuO<sub>2</sub>Cl<sub>2</sub>

ORAL

Abstract

We discuss Density Functional Theory (DFT) based results on the oxychloride cuprate Ca2CuO2Cl2 (CCOC), which are obtained by using the recently constructed Strongly-Constrained-and-Appropriately-Normed (SCAN) functional. Theoretical results are compared and contrasted with the corresponding angle-resolved photoemission (ARPES) measurements. Previous first-principles DFT studies have found the ground state of the half-filled CCOC to be metallic in sharp disagreement with the experimentally observed insulating state. Although the insulating behavior can be captured by introducing an empirical Hubbard U parameter in first-principles computations, that reduces the predictive power of the theory. In sharp contrast, the SCAN functional yields the antiferromagnetic insulator phase with a gap in good agreement with optical conductivity studies without the need to invoke the Hubbard U. We also discuss how the electronic structure of CCOC evolves with hole doping.

Presenters

  • Matthew Matzelle

    • Northeastern University

Authors

  • Matthew Matzelle

    • Northeastern University
  • Cheng Hu

    • Chinese Academy of Sciences (CAS)
    • The Chinese Academy of Sciences, Institute of physics
  • Christopher Lane

    • Northeastern
    • Northeastern University
  • Robert Markiewicz

    • Northeastern
    • Northeastern University
  • Jianwei Sun

    • Tulane University
    • Department of Physics and Engineering Physics, Tulane University
  • Xingjiang Zhou

    • Chinese Academy of Sciences (CAS)
    • Institute of Physics, Chinese Academy of Sciences
    • National Laboratory for Superconductivity (NLSC), Institute of Physics, CAS
    • Chinese Academy of Sciences
    • The Chinese Academy of Sciences, Institute of physics
  • Arun Bansil

    • Northeastern University
    • Department of Physics, Northeastern University