Exploring neutrino mass and mass hierarchy in the scenario of vacuum energy interacting with cold dark matter
Rui-Yun Guo, Jing-Fei Zhang, Xin Zhang

TL;DR
This study constrains neutrino mass and hierarchy in interacting dark energy models using cosmological data, revealing looser bounds in one interaction form and a preference for the normal hierarchy.
Contribution
It introduces a detailed analysis of neutrino mass constraints within interacting vacuum energy models, considering different interaction forms and neutrino hierarchies.
Findings
Looser neutrino mass constraints in the $Q=\beta H\rho_c$ model.
Slightly tighter constraints in the $Q=\beta H\rho_\Lambda$ model.
Normal hierarchy is favored over inverted hierarchy based on $\chi^2$ analysis.
Abstract
We investigate the constraints on total neutrino mass in the scenario of vacuum energy interacting with cold dark matter. We focus on two typical interaction forms, i.e., and . To avoid the occurrence of large-scale instability in interacting dark energy cosmology, we adopt the parameterized post-Friedmann approach to calculate the perturbation evolution of dark energy. We employ observational data, including the Planck cosmic microwave background temperature and polarization data, baryon acoustic oscillation data, a JLA sample of type Ia supernovae observation, direct measurement of the Hubble constant, and redshift space distortion data. We find that, compared with those in the CDM model, much looser constraints on are obtained in the model, whereas slightly tighter constraints are…
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