English

Minimal-size Real Space d-wave Pairing Operator in CuO2 Planes

Superconductivity 2019-12-11 v1

Abstract

A novel minimal-size pairing operator ΔD0\Delta^{\dagger}_{D0} with dd-wave symmetry in CuO2_2 planes is introduced. This pairing operator creates on-site Cooper pairs at the four oxygens that surround a copper atom. Via the time evolution of ΔD0\Delta^{\dagger}_{D0}, an additional inter-orbital pairing operator ΔDpd\Delta^{\dagger}_{Dpd} with dd-wave symmetry is generated that pairs fermions located in a Cu and its four surrounding O's. The subsequent time evolution of ΔDpd\Delta^{\dagger}_{Dpd} generates an intra-orbital dd-wave pairing operator ΔDpp\Delta^{\dagger}_{Dpp} involving the four O atoms that surround a Cu, as well as the dd-wave operator ΔD\Delta^{\dagger}_D traditionally used in single-band models for cuprates. Because we recover the larger size operators extensively used in the three-orbital Hubbard model, we suggest that long-range order using the canonical extended operators occurs together with long-range order in the new minimal operators. However, our minimal dd-wave operators could be more practical to study dd-wave superconductivity because in the finite-size relatively small systems accessible to computational techniques it is easier to observe long-range order using local operators. Moreover, an effective model with the usual tight-binding hopping of the CuO2_2 planes supplemented by an attractive potential VV in the dd-wave channel is introduced. Using mean-field techniques we show that a paired ground state is stabilized for any finite value of VV.

Cite

@article{arxiv.1909.04084,
  title  = {Minimal-size Real Space d-wave Pairing Operator in CuO2 Planes},
  author = {Adriana Moreo and Elbio Dagotto},
  journal= {arXiv preprint arXiv:1909.04084},
  year   = {2019}
}

Comments

10 pages, 6 figures

R2 v1 2026-06-23T11:10:12.889Z