从量子相对熵到半经典爱因斯坦方程
From Quantum Relative Entropy to the Semiclassical Einstein Equations

原始链接: https://arxiv.org/abs/2510.24491

在本文中,Philipp Dorau 等人证明了半经典爱因斯坦方程可以从量子信息原理,特别是量子相对熵中推导出来。 通过将模理论应用于分叉基灵视界(bifurcate Killing horizon)上的标量量子场,作者展示了真空态与相干激发态之间的相对熵对应于穿过视界的能量通量。通过积分贝肯斯坦-霍金(Bekenstein-Hawking)熵面积公式,他们将该能量通量与视界面积的变化直接联系起来,从而自然地导出了半经典爱因斯坦方程。 这项工作是泰德·雅各布森(Ted Jacobson)引力热力学推导的量子场论推广。通过以 Araki-Uhlmann 相对熵取代经典热力学熵,作者为这些方程提供了一个严谨的框架。该研究最终表明,量子信息是半经典引力的基本组成部分,并将弯曲时空中的量子场论定位为通往更深层次量子引力理论的桥梁。

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原文

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Abstract: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.
From: Philipp Dorau [view email]
[v1] Tue, 28 Oct 2025 15:05:57 UTC (36 KB)
[v2] Tue, 11 Nov 2025 14:55:45 UTC (56 KB)
[v3] Tue, 3 Mar 2026 14:16:25 UTC (57 KB)
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