English

Disordered systems and (subcritical) polynomial chaos with heavy-tail disorder

Probability 2026-02-05 v1

Abstract

We study discrete statistical mechanics systems perturbed by a random environment without a finite second moment. Specifically, we consider a random environment whose tail distribution satisfies P[ω>x]xγP[\omega > x] \sim x^{-\gamma} as x+x \to +\infty for some γ(1,2)\gamma \in (1,2). Inspired by the seminal work of Caravenna, Sun and Zygouras \cite{csz_2016}, we adopt a general framework that encompasses as key examples both the disordered pinning model and the long-range directed polymer model. We provide some subcriticality condition under which we prove that the discrete disordered system possesses a non-trivial scaling limit. We also interpret the subcriticality condition in terms of a generalized Harris criterion without second moment, which gives a prediction for disorder relevance depending on the parameters of the system. Our analysis relies on the study of multilinear polynomials of independent heavy-tailed random variables known as polynomial chaos and their continuous analogue, given by multiple integrals with respect to a γ\gamma-stable L\'evy white noise. We develop precise and flexible moments estimates adapted to the heavy-tailed setting.

Keywords

Cite

@article{arxiv.2602.04429,
  title  = {Disordered systems and (subcritical) polynomial chaos with heavy-tail disorder},
  author = {Gaspard Gomez},
  journal= {arXiv preprint arXiv:2602.04429},
  year   = {2026}
}
R2 v1 2026-07-01T09:35:44.069Z