论文标题
在渐近抗DE保姆黑洞上的半古典反应
Semi-Classical Backreaction on Asymptotically Anti-de Sitter Black Holes
论文作者
论文摘要
我们考虑在渐近抗DE安静的经典背景上的量子标量场黑洞,并且该场的应力 - 能量张量会引起黑洞几何形状。通过求解通过简单的分析近似值来对标量场应力 - 能量张量的重新归一化期望值进行的简单分析近似来得出的降级半古典爱因斯坦场方程来计算反应。当该场是无质量的且合成的耦合时,我们将采用页面对重量化的应力张量的近似,而对于大型田地,我们采用了DeWitt-Schinginger近似的修改版本。后者的近似必须修改,以使其具有确保半古典方程所需的正确的重新归一化自由度。配备了这些近似值,还要易于集成减少的字段方程,并获得对公制的一阶(以$ \ hbar $为单位)。我们还计算了校正到黑洞事件范围,表面重力和最低温度以及对光子球和二次曲率不变的校正。与它们的经典同行相比,我们特别注意半古典黑洞的温度曲线,指出了反应产生的一些有趣的定性特征。这些结果应在渐近抗DE安静的黑洞的几何形状上为一阶(一环)量子反射提供合理的近似值,而当确切的数值应力能量张量源来源半经典方程。
We consider a quantum scalar field on the classical background of an asymptotically anti-de Sitter black hole and the backreaction the field's stress-energy tensor induces on the black hole geometry. The backreaction is computed by solving the reduced-order semi-classical Einstein field equations sourced by simple analytical approximations for the renormalized expectation value of the scalar field stress-energy tensor. When the field is massless and conformally coupled, we adopt Page's approximation to the renormalised stress energy tensor while for massive fields, we adopt a modified version of the DeWitt-Schwinger approximation. The latter approximation must be modified so that it possesses the correct renormalization freedom required to ensure the semi-classical equations are consistent. Equipped with these approximations, the reduced-order field equations are easily integrated and the first-order (in $\hbar$) corrections to the metric are obtained. We also compute the corrections to the black hole event horizon, surface gravity and minimum temperature as well as corrections to the photon sphere and quadratic curvature invariants. We pay particular attention to the temperature profiles of the semi-classical black holes compared with their classical counterparts, pointing out some interesting qualitative features produced by the backreaction. These results ought to provide reasonable approximations to the first-order (one-loop) quantum backreaction on the geometry of asymptotically anti-de Sitter black holes when the exact numerical stress-energy tensor sources the semi-classical equations.