论文标题
在渐近安全的重力中及以后的黑洞
Black holes in asymptotically safe gravity and beyond
论文作者
论文摘要
渐近安全的量子重力是实现量子重力的一种方法,可以为度量标准制定标准的量子场理论。因此,即使是确定黑洞核心的真实结构的深量子重力状态,也可以由时空度量来描述。渐近安全性的本质在于该理论的新对称性 - 量子尺度对称性 - 表征了量子重力的短途状态。这意味着没有物理尺度。因此,牛顿耦合对应于量表,即普朗克长度,必须在短距离方面渐近消失。这意味着重力相互作用的削弱,可以从中可以预期经典的时空奇异性。实际上,渐近安全量子重力中黑洞的性质尚不能源自第一原理,而是使用称为重新归一化组改进的启发式程序来构建的。构建了由渐近安全启发的黑洞,既是用于消失的,也是用于非变化的自旋参数。它们的特征是(i)缺乏曲率奇异性,(ii)更紧凑的事件范围和光子球,(iii)即使在消失的自旋时,第二个(内部)地平线,以及(iv)冷残留物作为霍金蒸发的最终产物。观察结果可以开始限制量子重度量表,该量子量表可以被视为渐近安全灵感的黑洞中的自由参数。对于缓慢旋转的黑洞,来自EHT和X射线观察的约束只能限制远远超过Planck长度的量子尺度。在近临界自旋的极限下,渐近安全启发的黑洞可能``点亮'',即使对于等于planck长度的量子杀伤性尺度,ngeht也可能对ngeht敏感。
Asymptotically safe quantum gravity is an approach to quantum gravity that achieves formulates a standard quantum field theory for the metric. Therefore, even the deep quantum gravity regime, that is expected to determine the true structure of the core of black holes, is described by a spacetime metric. The essence of asymptotic safety lies in a new symmetry of the theory -- quantum scale symmetry -- which characterizes the short-distance regime of quantum gravity. It implies the absence of physical scales. Therefore, the Newton coupling, which corresponds to a scale, namely the Planck length, must vanish asymptotically in the short-distance regime. This implies a weakening of the gravitational interaction, from which a resolution of classical spacetime singularities can be expected. In practise, properties of black holes in asymptotically safe quantum gravity cannot yet be derived from first principles, but are constructed using a heuristic procedure known as Renormalization Group improvement. The resulting asymptotic-safety inspired black holes have been constructed both for vanishing and for nonvanishing spin parameter. They are characterized by (i) the absence of curvature singularities, (ii) a more compact event horizon and photon sphere, (iii) a second (inner) horizon even at vanishing spin and (iv) a cold remnant as a possible final product of the Hawking evaporation. Observations can start to constrain the quantum-gravity scale that can be treated as a free parameter in asymptotic-safety inspired black holes. For slowly-spinning black holes, constraints from the EHT and X-ray observations can only constrain quantum-gravity scales far above the Planck length. In the limit of near-critical spin, asymptotic-safety inspired black holes may ``light up" in a way the ngEHT may be sensitive to, even for a quantum-gravity scale equalling the Planck length.