paper

Universality Classes of Interacting Dark Energy from Spontaneous Symmetry Breaking

arXiv:2603.25595 · doi:10.1088/1361-6382/ae98d9

Abstract

Phenomenological models of interacting dark energy (IDE) often treat the late-time activation history of the dark sector coupling as an independent function. We show that in conformally coupled scalar--tensor theories, this freedom is constrained by the local restoring structure of the symmetry-breaking potential. Within the adiabatic tracking regime, the coupling evolution satisfies , where is the restoring order near the broken minimum thereby organizing distinct symmetry-breaking potentials such as quartic, Coleman--Weinberg, and axion-like forms into a common asymptotic dynamical class (, ). We test this framework using Planck~2018 CMB lensing, RSD, and supernova data. Current observations provide only limited discrimination between the predicted activation classes and yield no statistically significant evidence for a nonzero interaction with at credibility. The rigid asymptotic implementation () is strongly disfavored by the combined geometric and growth constraints indicating that the observable coupling history cannot be identified directly with its asymptotic attractor form. In the heavy-scalar adiabatic regime, the modifications to the growth rate and growth factor are of opposite sign throughout , suppressing the net deviation in to across the posterior. Standard growth-rate measurements therefore have limited sensitivity to this class of models, shifting the observational focus toward probes that constrain and independently. Taken together, these results establish a dynamical classification of late-time IDE activation histories and clarify how finite-redshift observables are related to the asymptotic attractor structure and the local restoring properties of the underlying scalar potential.

50 pages, 9 figures, 10 tables. MV, P. K., Kavya, N. S., & Kenath, A. (2026). Universality Classes of Interacting Dark Energy from Spontaneous Symmetry Breaking. Classical and Quantum Gravity