From Quantum Relative Entropy to the Semiclassical Einstein Equations

Fuente: arXiv
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Main Authors: Dorau, Philipp, Much, Albert
Format: Preprint
Published: 2025
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author Dorau, Philipp
Much, Albert
author_facet Dorau, Philipp
Much, Albert
contents We provide arguments indicating that the semiclassical Einstein equations follow from quantum relative entropy and its proportionality to an area variation. Using modular theory, we establish that the relative entropy between the vacuum state and coherent excitations of a scalar quantum field on a bifurcate Killing horizon is given by the energy flux across the horizon. Under the assumption of the Bekenstein-Hawking entropy-area formula, this energy flux is proportional to a variation in the surface area of the horizon cross section. The semiclassical Einstein equations follow automatically from this identification. Our approach provides a quantum field theoretic generalization of Jacobson's thermodynamic derivation of the Einstein equations, replacing classical thermodynamic entropy with the well-defined quantum relative (Araki-Uhlmann) entropy. This suggests that quantum information plays a central role in what is often seen as a zeroth order approximation of a theory of quantum gravity, namely quantum field theory in curved spacetimes.
format Preprint
id arxiv_https___arxiv_org_abs_2510_24491
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle From Quantum Relative Entropy to the Semiclassical Einstein Equations
Dorau, Philipp
Much, Albert
High Energy Physics - Theory
General Relativity and Quantum Cosmology
Mathematical Physics
Quantum Physics
We provide arguments indicating that the semiclassical Einstein equations follow from quantum relative entropy and its proportionality to an area variation. Using modular theory, we establish that the relative entropy between the vacuum state and coherent excitations of a scalar quantum field on a bifurcate Killing horizon is given by the energy flux across the horizon. Under the assumption of the Bekenstein-Hawking entropy-area formula, this energy flux is proportional to a variation in the surface area of the horizon cross section. The semiclassical Einstein equations follow automatically from this identification. Our approach provides a quantum field theoretic generalization of Jacobson's thermodynamic derivation of the Einstein equations, replacing classical thermodynamic entropy with the well-defined quantum relative (Araki-Uhlmann) entropy. This suggests that quantum information plays a central role in what is often seen as a zeroth order approximation of a theory of quantum gravity, namely quantum field theory in curved spacetimes.
title From Quantum Relative Entropy to the Semiclassical Einstein Equations
topic High Energy Physics - Theory
General Relativity and Quantum Cosmology
Mathematical Physics
Quantum Physics
url https://arxiv.org/abs/2510.24491