Dynamics of holographic dark energy with apparent-horizon cutoff and non-minimal derivative coupling gravity in non-flat FLRW universe
Issued Date
2024-07-01
Resource Type
ISSN
22126864
Scopus ID
2-s2.0-85194916491
Journal Title
Physics of the Dark Universe
Volume
45
Rights Holder(s)
SCOPUS
Bibliographic Citation
Physics of the Dark Universe Vol.45 (2024)
Suggested Citation
Tita A., Gumjudpai B., Srisawad P. Dynamics of holographic dark energy with apparent-horizon cutoff and non-minimal derivative coupling gravity in non-flat FLRW universe. Physics of the Dark Universe Vol.45 (2024). doi:10.1016/j.dark.2024.101542 Retrieved from: https://repository.li.mahidol.ac.th/handle/20.500.14594/98654
Title
Dynamics of holographic dark energy with apparent-horizon cutoff and non-minimal derivative coupling gravity in non-flat FLRW universe
Author(s)
Author's Affiliation
Corresponding Author(s)
Other Contributor(s)
Abstract
Background cosmological dynamics for a universe with matter, a scalar field non-minimally derivative coupling to Einstein tensor under power-law potential and holographic vacuum energy is considered here. The holographic IR cutoff scale is apparent horizon which, for accelerating universe, forms a trapped null surface in the same spirit as blackhole's event horizon. For non-flat case, effective gravitational constant cannot be expressed in the Friedmann equation. Therefore holographic vacuum density is defined with standard gravitational constant instead of the effective one. Dynamical and stability analysis shows four independent fixed points. One fixed point is stable and it corresponds to weff=−1. One branch of the stable fixed-point solutions corresponds to de-Sitter expansion. The others are either unstable or saddle nodes. Numerical integrations of the dynamical system are performed and plotted confronting with H(z) data. It is found that for flat universe, H(z) observational data favors large negative value of NMDC coupling, κ. Larger holographic contribution, c, and larger negative NMDC coupling increase slope and magnitude of the weff and H(z). Negative κ, can contribute to phantom equation of state, weff<−1. The NMDC-spatial curvature coupling could have phantom energy contribution. Free negative spatial curvature term can also contribute to phantom equation of state, but only with significantly large negative value of the spatial curvature. The model could give phantom equation of state for κ=−200 and high value of c for both flat and open cases.