English

Quintessence in a Brane World

High Energy Physics - Phenomenology 2009-11-07 v1 Astrophysics General Relativity and Quantum Cosmology High Energy Physics - Theory

Abstract

We reanalyze a new quintessence scenario in a brane world model, assuming that a quintessence scalar field is confined in our 3-dimensional brane world. We study three typical quintessence models : (1) an inverse-power-law potential, (2) an exponential potential, and (3) kinetic-term quintessence (kk-essence) model. With an inverse power law potential model (V(ϕ)=μα+4ϕαV(\phi) = \mu ^{\alpha + 4} \phi^{- \alpha}), we show that in the quadratic dominant stage, the density parameter of a scalar field Ωϕ\Omega_\phi decreases as a4(α2)/(α+2)a^{-4(\alpha-2)/(\alpha+2)} for 2<α<62<\alpha < 6, which is followed by the conventional quintessence scenario. This feature provides us wider initial conditions for a successful quintessence. In fact, even if the universe is initially in a scalar-field dominant, it eventually evolves into a radiation dominant era in the ρ2\rho^2-dominant stage. Assuming an equipartition condition, we discuss constraints on parameters, resulting that α4\alpha\geq 4 is required. This constraint also restricts the value of the 5-dimensional Planck mass, e.g. 4×1014m4\lsimm5\lsim3×1013m44 \times 10^{-14}m_4 \lsim m_5 \lsim 3 \times 10^{-13}m_4 for α=5\alpha=5. For an exponential potential model V=μ4exp(λϕ/m4)V=\mu^4\exp(-\lambda \phi/m_4), we may not find a natural and successful quintessence scenario as it is. While, for a kinetic-term quintessence, we find a tracking solution even in ρ2\rho^2-dominant stage, rather than the Ωϕ\Omega_\phi-decreasing solution for an inverse-power-law potential. Then we do find a little advantage in a brane world. Only the density parameter increases more slowly in the ρ2\rho^2-dominant stage, which provides a wider initial condition for a successful quintessence.

Keywords

Cite

@article{arxiv.hep-ph/0108012,
  title  = {Quintessence in a Brane World},
  author = {Shuntaro Mizuno and Kei-ichi Maeda},
  journal= {arXiv preprint arXiv:hep-ph/0108012},
  year   = {2009}
}

Comments

17 pages, 9 figures, submitted to Physical Review D

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