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Quantum geometry and its implications for black holes

机译:量子几何及其对黑洞的影响

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摘要

General relativity successfully describes space-times at scales that we can observe and probe today, but it cannot be complete as a consequence of singularity theorems. For a long time, there have been indications that quantum gravity will provide a more complete, non-singular extension which, however, was difficult to verify in the absence of a quantum theory of gravity. By now there are several candidates which show essential hints as to what a quantum theory of gravity may look like. In particular, loop quantum gravity is a non-perturbative formulation which is background independent, two properties which are essentially close to a classical singularity with strong fields and a degenerate metric. In cosmological and black hole settings, one can indeed see explicitly how classical singularities are removed by quantum geometry: there is a well-defined evolution all the way down to, and across, the smallest scales. As for black holes, their horizon dynamics can be studied showing characteristic modifications to the classical behavior. Conceptual and physical issues can also be addressed in this context, providing lessons for quantum gravity in general. Here, we conclude with some comments on the uniqueness issue often linked to quantum gravity in some form or another.
机译:广义相对论成功地描述了我们今天可以观察和探究的时空,但是由于奇异性定理的缘故,它不能完整。长期以来,有迹象表明,量子引力将提供更完整的,非奇异的扩展,但是,在缺乏引力量子理论的情况下,很难进行验证。到现在为止,有几位候选人就引力量子理论的模样给出了基本的提示。特别地,环量子引力是一种非微扰的公式,它与背景无关,这两个属性本质上接近于具有强场和简并度量的经典奇点。在宇宙学和黑洞环境中,确实可以清楚地看到量子几何如何消除了经典奇点:从最小尺度一直到最小尺度都有明确的演化。至于黑洞,可以研究其视界动力学,从而显示出对经典行为的特征性修改。概念和物理问题也可以在这种情况下解决,从而为量子重力提供一般性的课程。在这里,我们以关于唯一性问题的一些评论结束,这些问题通常与某种形式或另一种形式的量子引力有关。

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