English

Lorentzian Robin Universe

General Relativity and Quantum Cosmology 2024-01-09 v3 High Energy Physics - Theory

Abstract

In this paper, we delve into the gravitational path integral of Gauss-Bonnet gravity in four spacetime dimensions, in the mini-superspace approximation. Our primary focus lies in investigating the transition amplitude between distinct boundary configurations. Of particular interest is the case of Robin boundary conditions, known to lead to a stable Universe in Einstein-Hilbert gravity, alongside Neumann boundary conditions. To ensure a consistent variational problem, we supplement the bulk action with suitable surface terms. This study leads us to compute the necessary surface terms required for Gauss-Bonnet gravity with the Robin boundary condition, which wasn't known earlier. Thereafter, we perform an exact computation of the transition amplitude. Through 0\hbar\to0 analysis, we discover that the Gauss-Bonnet gravity inherently favors the initial configuration, aligning with the Hartle-Hawking no-boundary proposal. Remarkably, as the Universe expands, it undergoes a transition from the Euclidean (imaginary time) to the Lorentzian signature (real time). To further reinforce our findings, we employ a saddle point analysis utilizing the Picard-Lefschetz methods. The saddle point analysis allows us to find the initial configurations which lead to Hartle-Hawking no-boundary Universe that agrees with the exact computations. Our study concludes that for positive Gauss-Bonnet coupling, initial configurations corresponding to the Hartle-Hawking no-boundary Universe gives dominant contribution in the gravitational path-integral.

Keywords

Cite

@article{arxiv.2308.01310,
  title  = {Lorentzian Robin Universe},
  author = {Manishankar Ailiga and Shubhashis Mallik and Gaurav Narain},
  journal= {arXiv preprint arXiv:2308.01310},
  year   = {2024}
}

Comments

v3: Accepted in JHEP. 1+38 pages, 5 figures. Text and references added

R2 v1 2026-06-28T11:46:40.789Z