15–19 Jun 2026
Europe/Rome timezone

Modified Gravitational Wave Propagation as a Window into DESI's Dark Energy Phenomenology

Not scheduled
1m
poster Poster Session Poster Session

Speaker

Andrea Cozzumbo

Description

Recent DESI results, combined with other cosmological probes, have revived interest in dynamical dark energy, hinting at phantom crossing and a phantom regime at $z \gtrsim 1$. These observations have motivated a new class of modified gravity (MG) models consistent with current data but exhibiting rich phenomenology beyond $\Lambda$CDM. Several of these theories introduce a non-minimal coupling between a scalar field and gravity, altering both the growth of large-scale structure and the propagation of tensorial perturbations — inducing a friction term in the gravitational wave (GW) equation of motion and a systematic offset between GW and electromagnetic luminosity distances. This modified GW propagation offers a unique handle to discriminate among models otherwise degenerate at the background level.

We assess the capability of next-generation GW detectors to constrain these DESI-motivated MG models, comparing standard parametric approaches against a model-independent Gaussian Process (GP) reconstruction to evaluate how well each can distinguish viable MG theories from General Relativity.

To this end, we build a mock multi-messenger dataset of $\sim 40$ BNS mergers with GRB counterparts detected by Fermi and Swift, and forecast the sensitivity of future GW networks via a prior-informed Fisher matrix approach. Combined with CMB, SnIa, and BAO data to break parameter degeneracies, we show that this sample of multi-messenger events is sufficient to deliver unprecedented constraints on the MG phenomenology motivated by DESI, providing a powerful complementary test of gravity in the late Universe.

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