Signatures of confinement transition from the pseudogap metal to d-wave superconductor

ORAL

Abstract

We model the pseudogap state of the hole- and electron-doped cuprates as a metal with hole and/or electron pocket Fermi surfaces. In the absence of long-range antiferromagnetism, such Fermi surfaces violate the Luttinger requirement of enclosing the same area as free electrons at the same density. Using the Ancilla theory of such a pseudogap state, we describe the onset of conventional d-wave superconductivity by the condensation of a charge e Higgs boson transforming as a fundamental under the emergent SU(2) gauge symmetry of a background π-flux spin liquid. In all cases, we find that the d-wave superconductor has gapless Bogoliubov quasiparticles at 4 nodal points on the Brillouin zone diagonals with significant velocity anisotropy, just as in the BCS state. This includes the case of the electron-doped pseudogap metal with only electron pockets centered at wavevectors (π, 0), (0, π), and an electronic gap along the zone diagonals. Remarkably, in this case too, gapless nodal Bogoliubov quasiparticles emerge within the gap at 4 points along the zone diagonals upon the onset of superconductivity. We will also discuss predictions of our theory on experimental observables related to vortices of the d-wave superconductor in the presence of a magnetic field.

* This research was supported by the U.S. National Science Foundation grant No. DMR-2002850 and by the Simons Collaboration on Ultra-Quantum Matter which is a grant from the Simons Foundation (651440, S.S.).

Publication: https://arxiv.org/pdf/2308.03835.pdf

Presenters

  • Maine Christos

    Harvard University

Authors

  • Maine Christos

    Harvard University

  • Jiaxin Zhang

    Tsinghua University, Harvard University

  • Chenyuan Li

    Harvard University

  • Subir Sachdev

    Harvard University