English

Phase Competition and Anomalous Thermal Evolution in High-Temperature Superconductors

Strongly Correlated Electrons 2017-07-14 v1 Superconductivity

Abstract

The interplay of competing orders is relevant to high-temperature superconductivity known to emerge upon suppression of a parent antiferromagnetic order typically via charge doping. How such interplay evolves at low temperature---in particular at what doping level the zero-temperature quantum critical point (QCP) is located---is still elusive because it is masked by the superconducting state. The QCP had long been believed to follow a smooth extrapolation of the characteristic temperature TT^* for the strange normal state well above the superconducting transition temperature. However, recently the TT^* within the superconducting dome was reported to unexpectedly exhibit back-bending likely in the cuprate Bi2_{2}Sr2_{2}CaCu2_{2}O8+δ_{8+\delta}. Here we show that the original and revised phase diagrams can be understood in terms of weak and moderate competitions, respectively, between superconductivity and a pseudogap state such as dd-density-wave or spin-density-wave, based on both Ginzburg-Landau theory and the realistic tt-tt^{\prime}-tt^{\prime\prime}-JJ-VV model for the cuprates. We further found that the calculated temperature and doping-level dependence of the quasiparticle spectral gap and Raman response qualitatively agrees with the experiments. In particular, the TT^* back-bending can provide a simple explanation of the observed anomalous two-step thermal evolution dominated by the superconducting gap and the pseudogap, respectively. Our results imply that the revised phase diagram is likely to take place in high-temperature superconductors.

Keywords

Cite

@article{arxiv.1707.04077,
  title  = {Phase Competition and Anomalous Thermal Evolution in High-Temperature Superconductors},
  author = {Zuo-Dong Yu and Yuan Zhou and Wei-Guo Yin and Hai-Qing Lin and Chang-De Gong},
  journal= {arXiv preprint arXiv:1707.04077},
  year   = {2017}
}

Comments

13 pages, 12 figures

R2 v1 2026-06-22T20:45:49.494Z