W=0 pairing in Hubbard and related models of low-dimensional superconductors
Adalberto Balzarotti, Michele Cini, Enrico Perfetto, Gianluca, Stefanucci

TL;DR
This paper explores W=0 solutions in Hubbard models, revealing a systematic construction method for pairs that elucidate pairing mechanisms in low-dimensional superconductors, with implications for understanding high-temperature superconductivity.
Contribution
It introduces a general theorem and a systematic method to construct all W=0 pairs in Hubbard models, and analyzes their role in pairing and magnetic properties.
Findings
W=0 pairs can form bound states in relevant geometries.
W=0 pairs exhibit flux quantization similar to superconducting pairs.
Phonons can either hinder or enhance W=0 pairing depending on their mode.
Abstract
Lattice Hamiltonians with on-site interaction have W=0 solutions, that is, many-body {\em singlet} eigenstates without double occupation. In particular, W=0 pairs give a clue to understand the pairing force in repulsive Hubbard models. These eigenstates are found in systems with high enough symmetry, like the square, hexagonal or triangular lattices. By a general theorem, we propose a systematic way to construct all the W=0 pairs of a given Hamiltonian. We also introduce a canonical transformation to calculate the effective interaction between the particles of such pairs. In geometries appropriate for the CuO planes of cuprate superconductors, armchair Carbon nanotubes or Cobalt Oxides planes, the dressed pair becomes a bound state in a physically relevant range of parameters. We also show that W=0 pairs quantize the magnetic flux like superconducting pairs do. The pairing…
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