Constraints on Interacting Dark Energy Models from the DESI Baryon Acoustic Oscillation and DES Supernovae Data

Tian Nuo Li, Peng Ju Wu, Guo Hong Du, Shang Jie Jin, Hai Li Li, Jing Fei Zhang, Xin Zhang

Research output: Contribution to journalArticlepeer-review

4 Citations (Scopus)

Abstract

The recent results from the first-year baryon acoustic oscillations (BAO) data released by the Dark Energy Spectroscopic Instrument (DESI), combined with cosmic microwave background (CMB) and Type Ia supernova (SN) data, have shown a detection of significant deviation from a cosmological constant for dark energy. In this work, we utilize the latest DESI BAO data in combination with the SN data from the full 5 yr observations of the Dark Energy Survey and the CMB data from the Planck satellite to explore potential interactions between dark energy and dark matter. We consider four typical forms of the interaction term Q. Our findings suggest that interacting dark energy (IDE) models with Q ∝ ρde support the presence of an interaction where dark energy decays into dark matter. Specifically, the deviation from ΛCDM for the IDE model with Q = βH0ρde reaches the 3ς level. These models yield a lower value of Akaike information criterion than the ΛCDM model, indicating a preference for these IDE models based on the current observational data. For IDE models with Q ∝ ρc, the existence of interaction depends on the form of the proportionality coefficient Γ. The IDE model with Q = βHρc yields β = 0.0003 ± 0.0011, which essentially does not support the presence of the interaction. In general, whether the observational data support the existence of interaction is closely related to the model. Our analysis helps to elucidate which type of IDE model can better explain the current observational data.

Original languageEnglish
Article number1
Number of pages8
JournalAstrophysical Journal
Volume976
Issue number1
Early online date11 Nov 2024
DOIs
Publication statusPublished - Nov 2024

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