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January 6, 2026Journal of High Energy Physics0 citationsOpen Access

Cosmological correlators in gravitationally-constrained de Sitter states

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TCTuneer ChakrabortyHAH AshikSRSuvrat Raju

Key Points

  • The aim is to study cosmological correlators in de Sitter states considering the effects of gravitational constraints.
  • Analysis of perturbative correlators in gauge-fixed form
  • Formulation of Feynman rules for computations
  • Enumeration of conditions to avoid group-volume divergences
  • Correlators are conformally invariant but differ from QFT vacuum-expectation values
  • Non-Gaussianities arise even with a Gaussian vacuum wavefunction
  • State-dependent observables can approximate QFT correlators under certain conditions

Abstract

A bstract We study cosmological correlators in de Sitter quantum gravity in the limit where G N → 0. This limit is distinct from a nongravitational QFT because the gravitational constraints still force states and observables to be de Sitter invariant. We first examine a class of perturbative correlators that, in gauge-fixed form, are represented by the expectation value of a product of elementary fields on the late-time boundary. We formulate Feynman rules for our computations and enumerate some necessary, but not sufficient, conditions that must be imposed on states and operators to avoid group-volume divergences. These correlators are conformally invariant in all allowed perturbative states but never coincide with QFT vacuum-expectation values. For instance, our sample computations yield interesting non-Gaussianities even when the underlying vacuum wavefunction is Gaussian. However, we show that, in the presence of a heavy background state, it is possible to construct a separate class of state-dependent relational observables whose values approximate QFT correlators in the vacuum. This illustrates a key contrast in quantum gravity — between observables that are microscopically simple and observables whose expectation values in an appropriate background state lead to simple QFT-like correlators.

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Cite This Study

Chakraborty et al. (2026) studied this question.

synapsesocial.com/papers/695d85413483e917927a43c5https://doi.org/10.1007/jhep01(2026)004
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