Ladder-like optical conductivity in the spin-fermion model

ORAL

Abstract

In the nested limit of the spin-fermion model for the cuprates, 1D-type physics in the form of half-filled two-leg ladders emerges. We show that the RG flow of the corresponding ladder is towards the dMott phase, a gapped spin-liquid with short-ranged d-wave pairing correlations, and reveals an intermediate SO(5)xSO(3) symmetry. We use the results of the RG in combination with a memory-function approach to calculate the optical conductivity of the spin-fermion model in the high-frequency regime, where processes within the hotspot region dominate the transport. For finite temperature, we determine the resistivity in the zero-frequency limit. We argue that Umklapp processes play a major role. Our results show an approximate linear temperature dependence of the resistivity and a conductivity that follows a non-universal power law, qualitatively consistent with experiment.

*This project has received funding from the Alexander-von-Humboldt foundation (L.C.), the European Union’s Horizon 2020 research and innovation program under grant agreement No 745944 (N.J.R) and the U.S. Department of Energy, Office of Basic Energy Sciences, Contract No. DE-SC0012704 (A.M.T., LC).

Presenters

  • Laura Classen

    • CMPMSD, Brookhaven National Laboratory

Authors

  • Laura Classen

    • CMPMSD, Brookhaven National Laboratory
  • Neil Robinson

    • Institute for Theoretical Physics, University of Amsterdam
    • University of Amsterdam
  • Alexei Tsvelik

    • Brookhaven National Laboratory
    • CMPMSD, Brookhaven National Laboratory