论文标题
量子黑洞地震学I:回声,巨石和光谱
Quantum Black Hole Seismology I: Echoes, Ergospheres, and Spectra
论文作者
论文摘要
搜索引力波在合并后和/或天体物理黑洞的形成后回声,最近为他们的地平线的量子性质打开了一个新颖而令人惊讶的窗口。与天文学和气动学类似,对量子黑洞光谱的研究提供了一种有前途的方法来了解其内部结构,我们称之为$ \ textit {量子黑洞地震} $。我们根据Kerr Spacetime和Quantum Black Hole Horizons的性质提供了该频谱的详细数值和分析描述,表明它与它们的经典对应物截然不同。我们最重要的发现是:(1)如果量子黑洞的温度为$ \ lyssim 2 \ times $ hawking温度,那么它将不会遭受巨大的不稳定性(尽管在较小的旋转时界限较宽)。 (2)我们发现量子黑洞光谱如何指出量子结构的微观特性。例如,光谱线的详细间距可以区分量子效应是通过紧凑度(即外在的紧凑物体)还是频率(即修饰的分散关系)出现。 (3)我们发现,泛音的准模式可能会强烈增强低频区域回波的振幅。 (4)我们在线性扰动的广义darboux变换下显示了频谱的不变性,表明它是可观察到的真正协变量。
Searches for gravitational wave echoes in the aftermath of mergers and/or formation of astrophysical black holes have recently opened a novel and surprising window into the quantum nature of their horizons. Similar to astro- and helioseismology, study of the spectrum of quantum black holes provides a promising method to understand their inner structure, what we call $\textit{quantum black hole seismology}$. We provide a detailed numerical and analytic description of this spectrum in terms of the properties of the Kerr spacetime and quantum black hole horizons, showing that it drastically differs from their classical counterparts. Our most significant findings are the following: (1) If the temperature of quantum black hole is $\lesssim 2 \times$ Hawking temperature, then it will not suffer from ergoregion instability (although the bound is looser at smaller spins). (2) We find how quantum black hole spectra pinpoint the microscopic properties of quantum structure. For example, the detailed spacing of spectral lines can distinguish whether quantum effects appear through compactness (i.e., exotic compact objects) or frequency (i.e., modified dispersion relation). (3) We find out that the overtone quasinormal modes may strongly enhance the amplitude of echo in the low-frequency region. (4) We show the invariance of the spectrum under the generalized Darboux transformation of linear perturbations, showing that it is a genuine covariant observable.