Density of States and Spectral Function of a Superconductor out of a Quantum-Critical Metal

ORAL

Abstract

We analyze the validity of a quasiparticle description of a superconducting state above a metallic quantum- point (QCP). A normal state at a QCP is a non-Fermi liquid with no coherent quasiparticles. A superconducting order gaps out low-energy excitations, except for a sliver of states for non-s-wave gap symmetry, and at a first glance, restores coherent quasiparticle behavior. We argue that this does not necessarily hold as the fermionic self-energy may remain singular above the gap edge. This singularity gives rise to markedly non-BCS behavior of the density of states and to the appearance of a nondispersing mode at the gap edge in the spectral function. We analyze the set of quantum-critical models with an effective dynamical four-fermion interaction V(Ω)∝1/Ωγ, where Ω is a frequency of a boson, which mediates the interaction. We show that coherent quasiparticle behavior in a superconducting state holds for γ<1/2, but breaks down for larger γ. We discuss signatures of quasiparticle breakdown and compare our results with the photoemission data for Bi2201 and Bi2212.

* This work was supported by the U.S.-Israel Binational Science Foundation (BSF). The work by A. V. C. was supported by U.S. Department of Energy, Office of Science, Basic Energy Sciences, under Award No. DE-SC0014402.

Publication: Shang-Shun Zhang, Andrey V. Chubukov, Phys. Rev. Lett. 131, 086502 (2023)

Presenters

  • Shang-Shun Zhang

    University of Minnesota

Authors

  • Shang-Shun Zhang

    University of Minnesota

  • Andrey V Chubukov

    University of Minnesota