Non-Fermi liquid phase and linear-in- temperature scattering rate in overdoped two dimensional Hubbard model

ORAL

Abstract

Understanding electronic properties that violate the Landau Fermi liquid paradigm in cuprate superconductors remains a major challenge in condensed matter physics. The strange metal state in overdoped cuprates that exhibits linear-in-temperature scattering rate and dc resistivity is a particularly puzzling example. Here, we compute the electronic scattering rate in the two-dimensional Hubbard model using cluster generalization of dynamical mean-field theory. We present a global phase diagram documenting an apparent non-Fermi liquid phase, in between the pseudogap and Fermi liquid phase in the doped Mott insulator regime. We discover that in this non-Fermi liquid phase, the electronic scattering rate $\gamma_k(T)$ can display linear temperature dependence as temperature $T$ goes to zero. In the temperature range that we can access, the $T-$ dependent scattering rate is isotropic on the Fermi surface, in agreement with recent experiments. Using fluctuation diagnostic techniques, we identify antiferromagnetic fluctuations as the physical origin of the $T-$ linear electronic scattering rate.

*We acknowledge the National Natural Science Foundation of China (Grant No. 41030053), and. the Natural Science Foundation of Guangdong Province (Grant No. 42030030), the Natural Sciences and Engineering Research Council of Canada (NSERC) under grant RGPIN-2019-05312 and the Canada First Research Excellence Fund.

Publication: arXiv:2109.02635

Presenters

  • Wei Wu

    • Sun Yat-sen University

Authors

  • Wei Wu

    • Sun Yat-sen University
  • Wei Wu

    • Sun Yat-sen University
  • A.-M. S Tremblay

    • Universite de Sherbrooke, RQMP and Institut quantique
    • Universite de Sherbrooke
    • Université de Sherbrooke, RQMP & Institut quantique