1997Journal of Physics A Mathematical and GeneralRequires access

The binding energy and the charged gaps in the negative-UHubbard model: some rigorous results

Guang-Shan Tian

Open publisher page 8 citations

Abstract

By applying Lieb's spin-reflection-positivity method and exploiting a commutation relation satisfied by the negative-U Hubbard Hamiltonian, we prove two rigorous theorems on the binding energy of fermions, the one-particle and the two-particle gaps for the model on an arbitrary finite lattice.

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What this paper is about

By applying Lieb's spin-reflection-positivity method and exploiting a commutation relation satisfied by the negative-U Hubbard Hamiltonian, we prove two rigorous theorems on the binding energy of fermions, the one-particle and the two-particle gaps for the model on an arbitrary finite lattice.

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Available abstract

By applying Lieb's spin-reflection-positivity method and exploiting a commutation relation satisfied by the negative-U Hubbard Hamiltonian, we prove two rigorous theorems on the binding energy of fermions, the one-particle and the two-particle gaps for the model on an arbitrary finite lattice.

Key concepts: Hubbard model, Hamiltonian (control theory), Fermion, Physics, Commutation, Lattice (music), Quantum mechanics, Quantum electrodynamics

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