Cuprates phase diagram deduced from magnetic susceptibility: what is the `true' pseudogap line?
Yves Noat, Alain Mauger, Minoru Nohara, Hiroshi Eisaki, Shigeyuki, Ishida, and William Sacks

TL;DR
This study revisits magnetic susceptibility data in cuprates, revealing that the pseudogap persists across the entire phase diagram and challenging the notion that it terminates near optimal doping.
Contribution
The paper provides a unified analysis of susceptibility data across multiple cuprate compounds, clarifying the relationship between magnetic correlations and the pseudogap.
Findings
The pseudogap temperature $T^*$ is linear and tangent to the superconducting dome.
$T_{max}$ decreases linearly with doping and saturates in the overdoped regime.
$T_{max}$ has been misinterpreted as the pseudogap temperature $T^*$.
Abstract
Two contradictory phase diagrams have dominated the literature of high- cuprate superconductors. Does the pseudogap line cross the superconducting -dome or not? To answer, we have revisited the experimental magnetic susceptibility and knight shift of four different compounds, LaSrCuO, BiSrCaYCuO, BiSrCaCuO, and YBaCuO, as a function of temperature and doping. The susceptibility can be described by the same function for all materials, having a magnetic and an electronic contributions. The former is the 2D antiferromagnetic (AF) square lattice response, with a characteristic temperature of magnetic correlations . The latter is the `Pauli' term, revealing the gap opening in the electronic density of states at the pseudogap temperature . From precise fits of the data, we find that…
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Taxonomy
TopicsPhysics of Superconductivity and Magnetism · Superconductivity in MgB2 and Alloys · Iron-based superconductors research
