论文标题
线性DILATON重力及其半古典近似的微观模型
Microscopic Models of Linear Dilaton Gravity and Their Semi-classical Approximations
论文作者
论文摘要
我们重新分析并扩展了2015年针对线性dilaton黑洞提出的模型,并使用它们来测试有关黑洞物理学的几种投机性思想。我们根据弯曲时空中量子场理论中量子极端表面的定义进行了研究。我们模型的低能有效场理论是大型N CGHS模型,其中包括在理解页面曲线的“岛”提案中考虑的一个循环效应。与岛分析的结果相反,该溶液导致蒸发的黑洞的奇异几何形状。如果奇异性遵守宇宙审查制度,那么霍金蒸发留下了一个残留物体,而黑洞熵的有限分数。如果奇异性在某个时候变得赤裸裸,那么从那时起就产生的时间段线上的边界条件可以产生一个明智的模型,我们期望页面曲线。我们表明,完全紫外线完整的模型提供了正确的页面曲线,因为该模型显然是统一的。 Replicawormholes的最新结果表明,似乎仅涉及一个循环计算的岛公式实际上编码了对引力路径积分的非扰动贡献。为什么欧几里得重力计算可以捕获有关量子重力微观状态的信息的问题仍然是神秘的。在本文的投机性尾声中,我们建议,理解欧几里得重力路径积分和量子光谱之间的关系的正确方法是通过统计方法来解释雅各布森将一般相对论场方程作为因果钻石最大钻石的最大入门透的一般相对论场方程的解释。
We reanalyze and expand upon models proposed in 2015 for linear dilaton black holes, and use them to test several speculative ideas about black hole physics. We examine ideas based on the definition of quantum extremal surfaces in quantum field theory in curved space-time. The low energy effective field theory of our model is the large N CGHS model, which includes the one loop effects that are taken into account in the "island" proposal for understanding the Page curve. Contrary to the results of the island analysis, that solution leads to a singular geometry for the evaporated black hole. If the singularity obeys Cosmic Censorship then Hawking evaporation leaves behind a remnant object with a finite fraction of the black hole entropy. If the singularity becomes naked at some point, boundary conditions on a time-like line emanating from that point can produce a sensible model where we expect a Page curve. We show that the fully UV complete model gives a correct Page curve, as it must since the model is manifestly unitary. Recent result on replicawormholes suggest that the island formula, which appears to involve only one loop computations, in fact encodes non-perturbative contributions to the gravitational path integral. The question of why Euclidean gravity computations can capture information about microscopic states of quantum gravity remains mysterious. In a speculative coda to the paper we suggest that the proper way of understanding the relation between Euclidean gravity path integrals and quantum spectra is via a statistical approach to Jacobson's interpretation of general relativistic field equations as the hydrodynamic equations of the area law for the maximal entropy of causal diamonds.