Impurity-induced frustration: low-energy model of diluted oxides
Shiu Liu, A. L. Chernyshev

TL;DR
This paper derives a low-energy spin model for Zn-doped La2CuO4, revealing impurity-induced frustration effects that better explain experimental suppression of antiferromagnetic order.
Contribution
It introduces a novel impurity-mediated frustration term into the low-energy model, improving agreement with experimental data over previous dilution-only models.
Findings
Impurity states lower than the Hubbard gap U influence magnetic interactions.
Impurity-induced frustrations significantly suppress antiferromagnetic order.
Experimental data on spin stiffness supports the importance of frustration effects.
Abstract
We provide a detailed derivation of the low-energy model for Zn-diluted La2CuO4 in the limit of low doping together with a study of the ground-state properties of that model. We consider Zn-doped La2CuO4 within a framework of the three-band Hubbard model, which closely describes high-Tc cuprates on the energy scale of the most relevant atomic orbitals. Qualitatively, we find that the hybridization of zinc and oxygen orbitals can result in an impurity state with the energy \varepsilon, which is lower than the effective Hubbard gap U. The low-energy, spin-only Hamiltonian includes terms of the order t^2/U and t^4/\varepsilon^3. That is, besides the usual nearest-neighbor superexchange J-terms of order t^2/U, the low-energy model contains impurity-mediated, further-neighbor frustrating interactions among the Cu spins surrounding Zn-sites in an otherwise unfrustrated antiferromagnetic…
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