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Back-Reaction of Super-Hubble Fluctuations, Late Time Tracking and Recent Observational Results
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abstract
Previous studies suggested that the back-reaction of super-Hubble cosmological fluctuations could lead to a dynamical relaxation of the cosmological constant. Moreover, this mechanism appears to be self-regulatory, potentially leading to an oscillatory behavior in the effective dark energy. Such an effect would occur in any cosmological model with super-Hubble matter fluctuations, including the standard $\Lambda\text{CDM}$ model. The recent DESI data, which indicate that dark energy may be dynamical, has renewed interest in exploring scenarios leading to such oscillatory behavior. In this work we propose a parametrization to account for the impact of super-Hubble fluctuations on the background energy density of the Universe. We model the total effective cosmological constant as the sum of a constant piece and an oscillating contribution. We perform a preliminary comparison of the background dynamics of this model with the recent radial BAO data from DESI. We also discuss the status of the $H_0$ tension problem in this model.
Forward citations
Cited by 3 Pith papers
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Evolving Dark Energy from the Back-Reaction of Cosmological Perturbations
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Challenging $\Lambda$CDM: 5$\sigma$ Evidence for a Dynamical Dark Energy Late-Time Transition
Fitting a step transition in dark energy's equation of state to Planck+DESI DR2+DESY5 data gives a reported ~5 sigma preference for a phantom-to-quintessence transition at z about 0.49.
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Running Einstein Constant and a Possible Vacuum State of the Universe
A new gravity modification with an energy-density-dependent Einstein constant produces a logarithmic dark energy correction, but data constrain the new parameter to be zero within 1 sigma, so the model does not improv...
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