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Simulation of the NMR response in the pseudogap regime of the cuprates

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  • Xi Chen

    (University of Michigan)

  • J. P. F. LeBlanc

    (University of Michigan
    The Memorial University of Newfoundland)

  • Emanuel Gull

    (University of Michigan)

Abstract

The pseudogap in the cuprate high-temperature superconductors was discovered as a suppression of the Knight shift and spin relaxation time measured in nuclear magnetic resonance (NMR) experiments. However, theoretical understanding of this suppression in terms of the magnetic susceptiblility of correlated itinerant fermion systems was so far lacking. Here we study the temperature and doping evolution of these quantities on the two-dimensional Hubbard model using cluster dynamical mean field theory. We recover the suppression of the Knight shift and the linear-in-T spin echo decay that increases with doping. The relaxation rate shows a marked increase as T is lowered but no indication of a pseudogap on the Cu site, and a clear downturn on the O site, consistent with experimental results on single layer materials but different from double layer materials. The consistency of these results with experiment suggests that the pseudogap is well described by strong short-range correlation effects.

Suggested Citation

  • Xi Chen & J. P. F. LeBlanc & Emanuel Gull, 2017. "Simulation of the NMR response in the pseudogap regime of the cuprates," Nature Communications, Nature, vol. 8(1), pages 1-7, April.
  • Handle: RePEc:nat:natcom:v:8:y:2017:i:1:d:10.1038_ncomms14986
    DOI: 10.1038/ncomms14986
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