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Critical Phenomena on the Bethe Lattice

High Energy Physics - Theory 2026-01-06 v1 Statistical Mechanics

Abstract

We investigate the critical behavior of a family of Z2\mathbb{Z}_2-symmetric scalar field theories on the Bethe lattice (the tree limit of regular hyperbolic tessellations) using both the non-perturbative Functional Renormalization Group and lattice perturbation theory. The family is indexed by the parameter ζ(0,1]\zeta \in (0,1], which determines the range of the theory via the kinetic term constructed from the graph Laplacian raised to the power ζ\zeta. Specifically, ζ=1\zeta=1 is the short-range theory, while 0<ζ<10<\zeta<1 defines the long-range model. Due to the hyperbolic nature of Bethe lattices, the Laplacian lacks a zero mode and exhibits a spectral gap. We find that upon closing this spectral gap by a modification of the Laplacian, the scalar field theories exhibit novel critical behavior in the form of non-trivial fixed points with critical exponents governed by ζ\zeta and the spectral dimension ds=3d_s=3. In particular, our analysis indicates the presence of a Wilson-Fisher fixed point for the short range ζ=1\zeta =1 theory. In contrast, the nearest-neighbor Ising model on the Bethe lattice is known to exhibit mean-field critical exponents. To the best of our knowledge, this work provides the first evidence that a scalar ϕ4\phi^4 theory and the discrete Ising model on the same underlying lattice may lie in distinct universality classes.

Keywords

Cite

@article{arxiv.2601.01961,
  title  = {Critical Phenomena on the Bethe Lattice},
  author = {Rudrajit Banerjee and Nicolas Delporte and Saswato Sen and Reiko Toriumi},
  journal= {arXiv preprint arXiv:2601.01961},
  year   = {2026}
}

Comments

20 pages, 9 figures, 3 Tables, comments welcome