Phase transitions in coupled Ising chains and SO($N$)-symmetric spin chains
Abstract
We investigate the nature of quantum phase transitions in a (1+1)-dimensional field theory composed of copies of the Ising conformal field theory interacting via competing relevant perturbations. The field theory governs the competition between a mass term and an interaction involving the product of order-parameter fields, which is realized, e.g. in coupled Ising chains, two-leg spin ladders, and SO()-symmetric spin chains. By combining a perturbative renormalization group analysis and large-scale matrix-product state simulations, we systematically determine the nature of the phase transition as a function of . For and , we confirm that the transition is continuous, belonging to the Ising and four-state Potts universality classes, respectively. In contrast, for , our results provide compelling evidence that the transition becomes first order. We further apply these findings to specific lattice models with SO() symmetry, including spin- and spin- two-leg ladders, that realize a direct transition between an SO() symmetry-protected topological phase and a trivial phase. Our results refine a recent conjecture regarding the criticality of transitions between SPT phases.
Cite
@article{arxiv.2602.17029,
title = {Phase transitions in coupled Ising chains and SO($N$)-symmetric spin chains},
author = {Yohei Fuji and Sylvain Capponi and Lukas Devos and Philippe Lecheminant},
journal= {arXiv preprint arXiv:2602.17029},
year = {2026}
}
Comments
22 pages, 15 figures, v2: Figures updated, referencres added