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arXiv · cond-mat/9302011

Hole-hole correlations in the $U=\infty $ limit of the Hubbard model and the stability of the Nagaoka state

Abstract

We use exact diagonalisation in order to study the infinite - $U$ limit of the two dimensional Hubbard model. As well as looking at single-particle correlations, such as $n_{{\bf k}σ}=\langle c^\dagger _{{\bf k}σ}c_{{\bf k}σ} \rangle $, we also study {\it N-particle correlation functions} which compare the relative positions of {\it all} the particles in different models. In particular we study 16 and 18-site clusters and compare the charge correlations in the Hubbard model with those of spinless fermions and hard-core bosons. We find that although low densities of holes favour a `locally-ferromagnetic' fermionic description, the correlations at larger densities resemble those of pure hard-core bosons surprisingly well .

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BibTeXRIS

M. Long, X. Zotos. 1993-02-06. Hole-hole correlations in the $U=\infty $ limit of the Hubbard model and the stability of the Nagaoka state. https://doi.org/10.1103/physrevb.48.317

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