For a scalar field coupled to radiation, the paper derives a modified CMB temperature law T(z) = T0(1+z)^(1-ε/4) and argues that positive ε shifts acoustic peaks to larger scales, claiming this eases the Hubble tension.
Thermodynamics of Decaying Vacuum Cosmologies
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abstract
The thermodynamic behavior of vacuum decaying cosmologies is investigated within a manifestly covariant formulation. Such a process corresponds to a continuous irreversible energy flow from the vacuum component to the created matter constituents. It is shown that if the specific entropy per particle remains constant during the process, the equilibrium relations are preserved. In particular, if the vacuum decays into photons, the energy density $\rho$ and average number density of photons $n$ scale with the temperature as $\rho \sim T^{4}$ and $n \sim T^{3}$. The temperature law is determined and a generalized Planckian type form of the spectrum, which is preserved in the course of the evolution, is also proposed. Some consequences of these results for decaying vacuum FRW type cosmologies as well as for models with ``adiabatic'' photon creation are discussed.
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Probing Scalar-Photon Coupling in the Early Universe: Implications for CMB Temperature and Anisotropies
For a scalar field coupled to radiation, the paper derives a modified CMB temperature law T(z) = T0(1+z)^(1-ε/4) and argues that positive ε shifts acoustic peaks to larger scales, claiming this eases the Hubble tension.