Chiral Plaquette Polaron Theory of Cuprate Superconductivity
Jamil Tahir-Kheli, William A. Goddard III (California Institute of, Technology)

TL;DR
This paper proposes a novel chiral plaquette polaron model for cuprate superconductivity, emphasizing localized out-of-plane orbitals and their interactions, which explains various experimental observations including the pseudogap and Hall effect.
Contribution
It introduces a new theoretical framework based on chiral polarons formed on Cu plaquettes, contrasting with traditional models focusing on planar orbitals.
Findings
Percolation of polarons at x~0.05 leads to superconductivity.
Chiral polarons induce a temperature-dependent Hall effect.
Model explains incommensurate spin structure and linear resistivity.
Abstract
Ab-initio density functional calculations on explicitly doped La(2-x)Sr(x)CuO4 find doping creates localized holes in out-of-plane orbitals. A model for superconductivity is developed based on the assumption that doping leads to the formation of holes on a four-site Cu plaquette composed of the out-of-plane A1 orbitals apical O pz, planar Cu dz2, and planar O psigma. This is in contrast to the assumption of hole doping into planar Cu dx2-y2 and O psigma orbitals as in the t-J model. Interaction of holes with the d9 spin background leads to chiral polarons with either a clockwise or anti-clockwise charge current. When the polaron plaquettes percolate through the crystal at x~0.05 for LaSrCuO, a Cu dx2-y2 and planar O psigma band is formed. Spin exchange Coulomb repulsion with chiral polarons leads to D-wave superconductivity. The equivalent of the Debye energy in phonon superconductivity…
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