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Thermodynamic signatures of quantum criticality in cuprates

Superconductivity 2019-03-22 v1 Strongly Correlated Electrons

Abstract

The three central phenomena of cuprate superconductors are linked by a common doping pp^{\star}, where the enigmatic pseudogap phase ends, around which the superconducting phase forms a dome, and at which the resistivity exhibits an anomalous linear dependence on temperature as T0T \to 0. However, the fundamental nature of pp^{\star} remains unclear, in particular whether it marks a true quantum phase transition. We have measured the specific heat CC of the cuprates Eu-LSCO and Nd-LSCO at low temperature in magnetic fields large enough to suppress superconductivity, over a wide doping range across pp^{\star}. As a function of doping, we find that the electronic term CelC_{\rm el} is strongly peaked at pp^{\star}, where it exhibits a T-TlogTT dependence as T0T \to 0. These are the classic signatures of a quantum critical point, as observed in heavy-fermion and iron-based superconductors where their antiferromagnetic phase ends. We conclude that the pseudogap phase of cuprates ends at a quantum critical point, whose associated fluctuations are most likely involved in the dd-wave pairing and the anomalous scattering.

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Cite

@article{arxiv.1804.08502,
  title  = {Thermodynamic signatures of quantum criticality in cuprates},
  author = {B. Michon and C. Girod and S. Badoux and J. Kačmarčík and Q. Ma and M. Dragomir and H. A. Dabkowska and B. D. Gaulin and J. -S. Zhou and S. Pyon and T. Takayama and H. Takagi and S. Verret and N. Doiron-Leyraud and C. Marcenat and L. Taillefer and T. Klein},
  journal= {arXiv preprint arXiv:1804.08502},
  year   = {2019}
}

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Includes Supplementary Information