Dynamical Dark Energy Meets Varying Electron Mass: Implications for Phantom Crossing and the Hubble Constant
arXiv:2510.21931
Abstract
We investigate the interplay between varying electron mass () and dynamical dark energy by analysing the Chevallier-Polarski-Linder (CPL) parametrization and its non-crossing variants, both with and without a varying- component. Our aim is to assess whether the preference for late-time dynamics and phantom divide line (PDL) crossing persists when early-time physics is introduced, and whether these combined models improve the alleviation of the Hubble tension compared to the varying- extension alone. Using the latest CMB, BAO, and supernova datasets, we derive updated constraints on CDM, CPL, and their extensions, and examine their impact on and the preference for late-time dynamics. We find that CDM+ yields the largest upward shift in , while replacing with the CPL parametrization or its non-crossing variants provides modest improvements in the overall fit. The data consistently favour dynamical dark energy and a phantom divide line crossing at scale factors , and these preferences remain robust, though somewhat weaker (), when the electron mass is also allowed to vary. Among the late-time models, CPL performs better than its non-crossing variants, further reinforcing the evidence for a genuine phantom divide crossing. The alleviation of the tension in the varying- case arises from late-time data breaking the strong - degeneracy in the CMB, while the additional degrees of freedom in CPL models allow the late-time dynamics to absorb this impact, thereby weakening the degeneracy breaking and further lowering through their ability to yield a decreasing dark energy contribution.
24 pages, 7 figures, 5 tables