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February 26, 2026Journal of High Energy Physics7 citationsOpen Access

An open system approach to gravity

SSSantiago Agüí SalcedoTCThomas ColasLDLennard Dufner

Key Points

  • The aim is to explore gravitational dynamics in cosmology using an open system framework that addresses unobservable environments.
  • Developed a framework for open gravitational dynamics based on general relativity and the Schwinger-Keldysh formalism.
  • Computed gravitational density matrix using path integral formulation in perturbation theory around semi-classical spacetime.
  • Studied inflation and gravitational wave propagation in classical regimes with non-negligible environmental interactions.
  • Reproduced the known Open Effective Field Theory of Inflation in the decoupling limit, extended to include gravitational interactions.
  • Derived conservative and dissipative corrections to gravitational waves propagation.
  • Discovered that leading-order gravitational birefringence is dissipative, contrasting with electromagnetic cases.

Abstract

A bstract Several major open problems in cosmology — including the nature of inflation, dark matter, and dark energy — share a common structure: they involve spacetime-filling media with unknown microphysics, and can be probed so far only through their gravitational effects. This observation motivates a systematic open-system approach to cosmology, in which gravity evolves in the presence of a generic, unobservable environment. In this work, we develop a general framework for open gravitational dynamics based on general relativity and the Schwinger-Keldysh formalism, carefully addressing the nontrivial constraints imposed by diffeomorphism invariance. At the quantum level, our path integral formulation computes the gravitational density matrix in perturbation theory around a semi-classical spacetime. As illustrative applications, we study inflation and the propagation of gravitational waves in classical regimes where environmental interactions are non-negligible. In the inflationary context, our framework reproduces the known Open Effective Field Theory of Inflation in the decoupling limit and extends it to include gravitational interactions. For gravitational waves, we derive the most general conservative and dissipative corrections to propagation. Remarkably, we find that the leading-order gravitational birefringence is dissipative in nature, whereas conservative birefringence appears only at higher derivative order — opposite to the electromagnetic case. Our results pave the way to modeling dissipative effects in the late universe.

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Cite This Study

Salcedo et al. (2026) studied this question.

synapsesocial.com/papers/699fe41d95ddcd3a253e8630https://doi.org/10.1007/jhep02(2026)241
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