Kaniadakis Holographic Dark Energy with Particle Horizon as IR Cutoff
A. Asvar, M. Mohammadi, A. Sheykhi
Abstract
We construct a holographic dark-energy model using Kaniadakis entropy with the particle horizon as the infrared cutoff, consistently modifying both the holographic density and the Friedmann background. In standard Einstein gravity, noninteracting particle-horizon holographic dark energy (HDE) does not produce the sufficiently negative pressure required for late-time accelerated expansion. We show that the Kaniadakis deformation changes this behavior while the particle horizon is retained. For the representative parameter choice K=1.90×10-36, with Ω DE0=0.7 and c2=0.64, the deceleration parameter changes sign at z0.585 in the noninteracting case. Including the interaction strengths b2=0.03 and 0.06 changes the transition only slightly, giving z0.586 and 0.589, respectively. Thus, for the parameter set considered here, the interaction does not generate the acceleration; rather, the transition is already present in the noninteracting Kaniadakis model and the interaction produces only a small shift in its timing. We derive the autonomous evolution equations, the effective dark-energy equation of state, and the deceleration parameter. The adiabatic squared sound speed is also examined as a diagnostic of the effective-fluid stability, while statefinder variables are used to characterize deviations from ΛCDM. Finally, we verify that the K0 limit continuously recovers standard Einstein-gravity particle-horizon HDE, for which the noninteracting model remains decelerating.
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