English

Non-singular bounce transitions in the multiverse

High Energy Physics - Theory 2015-06-17 v2 General Relativity and Quantum Cosmology

Abstract

According to classical GR, negative-energy (AdS) bubbles in the multiverse terminate in big crunch singularities. It has been conjectured, however, that the fundamental theory may resolve these singularities and replace them by non-singular bounces. Here we explore possible dynamics of such bounces using a simple modification of the Friedmann equation, which ensures that the scale factor bounces when the matter density reaches some critical value ρc\rho_c. This is combined with a simple scalar field `landscape', where the energy barriers between different vacua are small compared to ρc\rho_c. We find that the bounce typically results in a transition to another vacuum, with a scalar field displacement Δϕ1\Delta\phi \sim 1 in Planck units. If the new vacuum is AdS, we have another bounce, and so on, until the field finally transits to a positive-energy (de Sitter) vacuum. We also consider perturbations about the homogeneous solution and discuss some of their amplification mechanisms (e.g., tachyonic instability and parametric resonance). For a generic potential, these mechanisms are much less efficient than in models of slow-roll inflation. But the amplification may still be strong enough to cause the bubble to fragment into a mosaic of different vacua.

Keywords

Cite

@article{arxiv.1309.2847,
  title  = {Non-singular bounce transitions in the multiverse},
  author = {Jaume Garriga and Alexander Vilenkin and Jun Zhang},
  journal= {arXiv preprint arXiv:1309.2847},
  year   = {2015}
}

Comments

29 pages, 11 figures, references added

R2 v1 2026-06-22T01:24:57.100Z