论文标题

Kerr黑洞内部区域中量子标量场的两点功能

Two-point function of a quantum scalar field in the interior region of a Kerr black hole

论文作者

Zilberman, Noa, Casals, Marc, Ori, Amos, Ottewill, Adrian C.

论文摘要

量子场对经典背景时空的影响可以从一般相对性的半经典方程中获得,并作为量子场的应力能量张量的期望值作为来源。该期望值可以根据哈达玛(Hadamard)的基本两点函数来计算,实际上,这是根据在两个时空点评估的现场模式的产物总和给出的。我们在Kerr Black Hole SpaceTime上的Unruh状态下为无质量标量场的两点函数得出表达式。本文我们的主要结果是当两个点位于黑洞内时有效的新表达式。我们(重新)使用新方法得出,当两个点位于黑洞外时,已知的表达式有效。我们通过找到根据智障的Kruskal坐标和Eddington模式在Eddington坐标方面定义的Unruh模式之间的关系来实现这些表达。虽然我们的两点函数的起始表达方式是根据unruh模式编写的,但我们以爱丁顿模式给出了最终表达,它们具有将它们分解为遵守普通微分方程的因素的计算优势。在附录中,我们还为裸模式贡献了对压力能量张量的裸模式的表达式,用于在黑洞内的最小耦合无质量标量场。因此,我们的结果为将来计算Kerr黑洞内的量子效应奠定了基础。

Quantum field effects on a classical background spacetime may be obtained from the semiclassical equations of General Relativity with the expectation value of the stress-energy tensor of the quantum field as a source. This expectation value can be calculated from Hadamard's elementary two-point function, which in practice is given in terms of sums of products of field modes evaluated at two spacetime points. We derive expressions for the two-point function for a massless scalar field in the Unruh state on a Kerr black hole spacetime. Our main result in this paper is a novel expression valid when the two points lie inside the black hole; we also (re-)derive, using a new method, the known expression valid when the two points lie outside the black hole. We achieve these expressions by finding relationships between Unruh modes, defined in terms of the retarded Kruskal coordinate, and Eddington modes, defined in terms of the Eddington coordinates. While our starting expression for the two-point function is written in terms of the Unruh modes, we give our final expression in terms of the Eddington modes, which have the computational advantage that they decompose into factors that obey ordinary differential equations. In an appendix we also derive expressions for the bare mode contributions to the flux components of the stress-energy tensor for a minimally-coupled massless scalar field inside the black hole. Our results thus lay the groundwork for future calculations of quantum effects inside a Kerr black hole.

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