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arXiv · cond-mat/0206173

Canonical Solution of Classical Magnetic Models with Long-Range Couplings

Abstract

We study the canonical solution of a family of classical $n-vector$ spin models on a generic $d$-dimensional lattice; the couplings between two spins decay as the inverse of their distance raised to the power $α$, with $α<d$. The control of the thermodynamic limit requires the introduction of a rescaling factor in the potential energy, which makes the model extensive but not additive. A detailed analysis of the asymptotic spectral properties of the matrix of couplings was necessary to justify the saddle point method applied to the integration of functions depending on a diverging number of variables. The properties of a class of functions related to the modified Bessel functions had to be investigated. For given $n$, and for any $α$, $d$ and lattice geometry, the solution is equivalent to that of the $α=0$ model, where the dimensionality $d$ and the geometry of the lattice are irrelevant.

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BibTeXRIS

A. Campa, A. Giansanti, D. Moroni. 2002-06-11. Canonical Solution of Classical Magnetic Models with Long-Range Couplings. https://doi.org/10.1088/0305-4470%2F36%2F25%2F301

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