论文标题

精确的重新归一化组,纠缠熵和黑洞熵

Exact Renormalization Group, Entanglement Entropy, and Black Hole Entropy

论文作者

Miqueleto, Joao Lucas, Landulfo, Andre G. S.

论文摘要

黑洞物理学的研究揭示了热力学,量子力学和重力之间的基本联系。如今,众所周知,黑洞是温度和熵明确的热力学对象。尽管黑洞的辐射使我们可以将一个定义明确的温度与黑洞相关联的机制,但其熵的起源仍然是一个谜。在这里,我们研究了从田地的量子波动如何呈现黑洞的温度有助于其熵。通过在具有分叉杀伤范围的时空中使用精确的重新归一化组方程进行自我相互作用的真实标量场,我们发现总重力熵的重新归一化组流量。我们表明,在整个流中,一个人可以将量子场的贡献分解为一部分,从地平线内部和外部自由度之间的纠缠和零件之间以及由于对瓦尔德熵的量子校正而造成的零件。重新归一化的黑洞熵显示在整个流动过程中是恒定的,而在低能量下有效的黑洞熵与红外纠缠熵变化之间的平衡发生了变化。类似的结论对于总熵的WALD熵部分有效。此外,我们的计算表明,来自有效动作或重力熵的耦合常数的重新归一化之间没有不匹配,该耦合常数求解了一个明显的“拼图”似乎存在于相互作用的场上。

The study of black hole physics revealed a fundamental connection between thermodynamics, quantum mechanics, and gravity. Today, it is known that black holes are thermodynamical objects with well-defined temperature and entropy. Although black hole radiance gives us the mechanism from which we can associate a well-defined temperature to the black hole, the origin of its entropy remains a mystery. Here we investigate how the quantum fluctuations from the fields that render the black hole its temperature contribute to its entropy. By using the exact renormalization group equation for a self-interacting real scalar field in a spacetime possessing a bifurcate Killing horizon, we find the renormalization group flow of the total gravitational entropy. We show that throughout the flow one can split the quantum field contribution to the entropy into a part coming from the entanglement between field degrees of freedom inside and outside the horizon and a part due to the quantum corrections to the Wald entropy coming from the Noether charge. The renormalized black hole entropy is shown to be constant throughout the flow while the balance between the effective black hole entropy at low energies and the infra-red entanglement entropy changes. A similar conclusion is valid for the Wald entropy part of the total entropy. Additionally, our calculations show that there is no mismatch between the renormalization of the coupling constants coming from the effective action or the gravitational entropy, solving an apparent "puzzle" that appeared to exist for interacting fields.

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