论文标题
球面对称环量子重力:改进动力学的分析
Spherically symmetric loop quantum gravity: analysis of improved dynamics
论文作者
论文摘要
我们研究了Chiou {\ em等人}在循环量子重力中处理球形对称空间时间的“改进动力学”,类似于Ashtekar,Pawlowski和Singh为均质太空时间构建的。在这种动力学中,聚合参数是动态变量的充分动机函数,反映了面积量子取决于它们的事实。与均匀的情况相反,其实现并没有触发不良的物理特性。我们在量子理论中识别半经典的物理状态,并得出相应的有效半经典指标。然后,我们讨论他们的一些属性。具体而言,时空接近低弯曲的schwarzschild几何形状。此外,无论黑洞的质量如何,经典理论中奇异性所在的区域都被有限和普朗克顺序曲率取代。这规定了量化方案中天体物理黑洞似乎没有改进的天体物理黑洞的trans-planckian曲线。它使奇点的分辨率更与使用Schwarzschild黑洞内部和Kantowski-Sachs环路量子宇宙学的内部等轴测图中观察到的分辨率更加一致。可以观察到有效违反黑洞内部的无效状况的出现,这是消除奇异性机制的一部分。
We study the "improved dynamics" for the treatment of spherically symmetric space-times in loop quantum gravity introduced by Chiou {\em et al.} in analogy with the one that has been constructed by Ashtekar, Pawlowski and Singh for the homogeneous space-times. In this dynamics the polymerization parameter is a well motivated function of the dynamical variables, reflecting the fact that the quantum of area depends on them. Contrary to the homogeneous case, its implementation does not trigger undesirable physical properties. We identify semiclassical physical states in the quantum theory and derive the corresponding effective semiclassical metrics. We then discuss some of their properties. Concretely, the space-time approaches sufficiently fast the Schwarzschild geometry at low curvatures. Besides, regions where the singularity is in the classical theory get replaced by a regular but discrete effective geometry with finite and Planck order curvature, regardless of the mass of the black hole. This circumvents trans-Planckian curvatures that appeared for astrophysical black holes in the quantization scheme without the improvement. It makes the resolution of the singularity more in line with the one observed in models that use the isometry of the interior of a Schwarzschild black hole with the Kantowski--Sachs loop quantum cosmologies. One can observe the emergence of effective violations of the null energy condition in the interior of the black hole as part of the mechanism of the elimination of the singularity.