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Dynamical Barbero--Immirzi field coupled to quintessence: gravitational-wave propagation constraints and next-generation forecasts

Zhi-Fu Gao, Hui Wang, Luiz Carlos Garcia de Andrade, Na Wang, Guo-Qiang Jin, Zhou-Jian Cao

gr-qcarXiv:2608.09487

Abstract

We investigate the imprints of a dynamical Barbero--Immirzi (BI) field γ(x) coupled to a quintessence scalar field ϕ on gravitational-wave (GW) propagation. In the framework of Einstein--Cartan--Holst gravity, promoting γ to a dynamical scalar introduces a stress--energy that back-reacts on the metric, modifying the GW friction term. A minimal coupling β\,ϕ2γ2 between the BI field and quintessence leads to a two-parameter extension of the Belgacem--Maggiore parametrization, characterized by (from the isolated BI field) and (from the coupling). Using the LIGO--Virgo--KAGRA GWTC-3 dark-siren constraint Ξ0=1.2+0.7-0.7, we obtain the first simultaneous constraints: ||0.7 and ||0.13 at 90\% credibility. We then forecast the sensitivity of next-generation detectors Einstein Telescope (ET) and Cosmic Explorer (CE), showing that a 10-year observation campaign can improve these bounds by roughly one to two orders of magnitude depending on the parameter---a factor of \!20 for and \!20 for ---reaching σ()3×10-2 and σ()1.2×10-2. Translated into microscopic parameters, this corresponds to γ dyn10-12 and β10-3, providing a powerful new observational window into the interplay between quantum-gravity phenomenology and dark energy.

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