English

Revisiting chameleon gravity - thin-shells and no-shells with appropriate boundary conditions

General Relativity and Quantum Cosmology 2008-11-26 v1 Astrophysics

Abstract

We derive analytic solutions of a chameleon scalar field ϕ\phi that couples to a non-relativistic matter in the weak gravitational background of a spherically symmetric body, paying particular attention to a field mass mAm_A inside of the body. The standard thin-shell field profile is recovered by taking the limit mArcm_A*r_c \to \infty, where rcr_c is a radius of the body. We show the existence of "no-shell" solutions where the field is nearly frozen in the whole interior of the body, which does not necessarily correspond to the "zero-shell" limit of thin-shell solutions. In the no-shell case, under the condition mArc1m_A*r_c \gg 1, the effective coupling of ϕ\phi with matter takes the same asymptotic form as that in the thin-shell case. We study experimental bounds coming from the violation of equivalence principle as well as solar-system tests for a number of models including f(R)f(R) gravity and find that the field is in either the thin-shell or the no-shell regime under such constraints, depending on the shape of scalar-field potentials. We also show that, for the consistency with local gravity constraints, the field at the center of the body needs to be extremely close to the value ϕA\phi_A at the extremum of an effective potential induced by the matter coupling.

Keywords

Cite

@article{arxiv.0808.2284,
  title  = {Revisiting chameleon gravity - thin-shells and no-shells with appropriate boundary conditions},
  author = {Takashi Tamaki and Shinji Tsujikawa},
  journal= {arXiv preprint arXiv:0808.2284},
  year   = {2008}
}

Comments

14 pages, no figures

R2 v1 2026-06-21T11:11:10.071Z