English

Microstate counting from defects in de Sitter

High Energy Physics - Theory 2026-01-08 v2

Abstract

We explore the microscopic origin of de Sitter entropy using a Lorentzian path-integral approach. We construct a Hilbert space whose states are associated with configurations of thin shells or end-of-the-world branes, with state overlaps defined by the gravitational path integral. By considering states which are indistinguishable to an observer, we find that the variance of microstate overlaps is dominated by Lorentzian wormhole topologies with conical singularities. Evaluating these overlaps, we recover the expected area law for the entropy, relating the dimension of the de Sitter Hilbert space to the area of the cosmological horizon. Extending this analysis to Schwarzschild-de Sitter spacetime, we show that both the cosmological and black hole horizons contribute to the total entropy. Along the way, we present an explicit construction of the shell and brane configurations and examine their compatibility with relevant consistency conditions, including the null energy condition.

Keywords

Cite

@article{arxiv.2511.09624,
  title  = {Microstate counting from defects in de Sitter},
  author = {Jan de Boer and Diego Liska and Kamran Salehi Vaziri},
  journal= {arXiv preprint arXiv:2511.09624},
  year   = {2026}
}

Comments

39 pages + appendices, 4 figures; v2: minor edits to the discussion and added references

R2 v1 2026-07-01T07:34:29.072Z