Entanglement system, Casimir energy and black hole
arXiv:gr-qc/0511104 · doi:10.1016/j.physletb.2006.03.070
Abstract
We investigate the connection between the entanglement system in Minkowski spacetime and the black hole using the scaling analysis. Here we show that the entanglement system satisfies the Bekenstein entropy bound. Even though the entropies of two systems are the same form, the entanglement energy is different from the black hole energy. Introducing the Casimir energy of the vacuum energy fluctuations rather than the entanglement energy, it shows a feature of the black hole energy. Hence the Casimir energy is more close to the black hole than the entanglement energy. Finally, we find that the entanglement system behaves like the black hole if the gravitational effects are included properly.
11 pages, no figure, version to appear in PLB
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- A Comment or two on Holographic Dark Energy
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- Entanglement and Nonunitary Evolution
- AdS Solutions in Gauge Supergravities and the Global Anomaly for the Product of Complex Two-Cycles