Metastability in Emergent Dark Energy: A New Framework Confronting Cosmological Observations
arXiv:2606.05723 · doi:10.3847/2041-8213/ae5a36
Abstract
We propose the Metastable Emergent Dark Energy (MEDE) model, a novel phenomenological extension of the Phenomenological (PEDE) and Generalized (GEDE) Emergent Dark Energy frameworks, in which dark energy exhibits a transitionary behavior, appearing at late times and vanishing toward the future. This model naturally enables a smooth crossing of the phantom divide line in the dark energy equation of state, as hinted at by recent observations. The MEDE model is defined by a hyperbolic tangent dark energy equation of state , introducing only two free parameters, the transition redshift and the variation amplitude , allowing both the emergent and transitionary behavior of dark energy. We constrain the MEDE model using a combined dataset of Planck CMB, DESI DR2 BAO, and different compilations of Type Ia supernovae, obtaining and (for CMB+DESI+PantheonPlus), indicating a statistically significant deviation from the cosmological constant. Statistical comparisons show that the MEDE model is preferred over CDM by the combined dataset, with . The MEDE model performs comparably to the CPL dynamical dark energy parametrization (), with no strong statistical distinction from CPL using current data. Notably, MEDE preserves the success of CDM in describing early-universe physics and naturally accommodates the phantom-crossing signature indicated by the latest low-redshift observations. The MEDE scenario provides a compelling dark energy phenomenology that may guide us toward interesting theoretical implications.
10 pages, 4 figures
References in corpus (2)
Cited by in corpus (4)
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- Unifying the Dark Sector with the New Generalized Chaplygin Gas: Observational Constraints