Scientific article
OA Policy
English

Quantum chaos in 2D gravity

Published inSciPost physics, vol. 15, no. 2, p. 1-37; 64
Publication date2023
First online date2023-08-16
Abstract

We present a quantitative and fully non-perturbative description of the ergodic phase of quantum chaos in the setting of two-dimensional gravity. To this end we describe the doubly non-perturbative completion of semiclassical 2D gravity in terms of its associated universe field theory. The guiding principle of our analysis is a flavor-matrix theory (fMT) description of the ergodic phase of holographic gravity, which exhibits U(n|n) causal symmetry breaking and restoration. JT gravity and its 2D-gravity cousins alone do not realize an action principle with causal symmetry, however we demonstrate that their universe field theory, the Kodaira-Spencer (KS) theory of gravity, does. After directly deriving the fMT from brane-antibrane correlators in KS theory, we show that causal symmetry breaking and restoration can be understood geometrically in terms of different (topological) D-brane vacua. We interpret our results in terms of an open-closed string duality between holomorphic Chern-Simons theory and its closed-string equivalent, the KS theory of gravity. Emphasis will be put on relating these geometric principles to the characteristic spectral correlations of the quantum ergodic phase.

Keywords
  • Gravitation: holography
  • Correlation: quantum
  • Dimension: 2
  • Duality: string
  • Causality
  • Chaos
  • Symmetry breaking
  • Nonperturbative
  • Spectral
  • Holomorphic
  • Correlation function
  • D-brane
  • Topological
  • Semiclassical
  • Vacuum state
  • Chern-Simons term
Funding
Citation (ISO format)
ALTLAND, Alexander et al. Quantum chaos in 2D gravity. In: SciPost physics, 2023, vol. 15, n° 2, p. 1–37. doi: 10.21468/scipostphys.15.2.064
Main files (1)
Article (Published version)
Identifiers
Additional URL for this publicationhttps://scipost.org/10.21468/SciPostPhys.15.2.064
Journal ISSN2542-4653
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