Updated observational constraints on $\phi$CDM dynamical dark energy cosmological models
Abstract
We present updated observational constraints on the spatially flat CDM model, where dark energy is described by a minimally coupled scalar field with an inverse power-law potential . Using Planck 2018 CMB temperature, polarization (P18), and lensing power spectra (lensing), along with a compilation of non-CMB data including baryon acoustic oscillation, type Ia supernova, Hubble parameter, and growth rate measurements, we constrain CDM and CDM+ models where is the CMB lensing consistency parameter. The scalar field parameter , which governs dark energy dynamics, is more tightly constrained by non-CMB data than by CMB data alone. For the full dataset, we obtain in the CDM model and in the CDM+ model, mildly favoring evolving dark energy over a cosmological constant by and . The Hubble constant is km s Mpc in the CDM model, consistent with median statistics and some local determinations, but in tension with other local determinations. The constraints for matter density and clustering amplitude (, ) of the flat CDM model statistically agree with CDM model values. Allowing to vary reduces tensions between CMB and non-CMB data, although we find , higher than unity, consistent with the excess smoothing seen in Planck data. Model comparison using AIC and DIC indicates that the CDM model provides a fit comparable to CDM, with the CDM+ slightly preferred. Overall, while the CDM model remains an excellent fit, current data leave open the possibility of mildly evolving quintessence-like dynamical dark energy.
Cite
@article{arxiv.2509.25812,
title = {Updated observational constraints on $\phi$CDM dynamical dark energy cosmological models},
author = {Chan-Gyung Park and Bharat Ratra},
journal= {arXiv preprint arXiv:2509.25812},
year = {2025}
}
Comments
16 pages, 6 figures, 4 tables