Dynamics of false vacuum bubbles: beyond the thin shell approximation
Jakob Hansen, Dong-il Hwang, Dong-han Yeom

TL;DR
This paper numerically investigates false vacuum bubble dynamics beyond the thin shell approximation, revealing new behaviors including expansion, collapse, wormhole formation, and implications for bubble universe creation and unitarity violation.
Contribution
It extends previous thin shell models by incorporating field dynamics and finite shell thickness, uncovering novel solution types and conditions for inflation and wormhole formation.
Findings
Low-energy shells tend to collapse (Type 1)
High-energy shells tend to expand (Type 2)
Adding exotic matter enables wormhole formation (Type 3)
Abstract
We numerically study the dynamics of false vacuum bubbles which are inside an almost flat background; we assumed spherical symmetry and the size of the bubble is smaller than the size of the background horizon. According to the thin shell approximation and the null energy condition, if the bubble is outside of a Schwarzschild black hole, unless we assume Farhi-Guth-Guven tunneling, expanding and inflating solutions are impossible. In this paper, we extend our method to beyond the thin shell approximation: we include the dynamics of fields and assume that the transition layer between a true vacuum and a false vacuum has non-zero thickness. If a shell has sufficiently low energy, as expected from the thin shell approximation, it collapses (Type 1). However, if the shell has sufficiently large energy, it tends to expand. Here, via the field dynamics, field values of inside of the shell…
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