A quantum peek inside the black hole event horizon
Sumanta Chakraborty, Suprit Singh, T. Padmanabhan

TL;DR
This paper analyzes quantum scalar fields in a collapsing black hole spacetime, revealing divergences in energy density near the singularity and suggesting significant back-reaction effects inside the event horizon.
Contribution
It provides a comprehensive calculation of the stress tensor in (1+1) and (1+3) dimensions inside and outside the horizon, including near the singularity, extending previous analyses.
Findings
Energy density diverges near the singularity inside the black hole.
Quantum field energy dominates over classical matter near the singularity.
Back-reaction effects are significant outside the collapsing matter but inside the event horizon.
Abstract
We solve the Klein-Gordon equation for a scalar field, in the background geometry of a dust cloud collapsing to form a black hole, everywhere in the (1+1) spacetime: that is, both inside and outside the event horizon and arbitrarily close to the curvature singularity. This allows us to determine the regularized stress tensor expectation value, everywhere in the appropriate quantum state (viz., the Unruh vacuum) of the field. We use this to study the behaviour of energy density and the flux measured in local inertial frames for the radially freely falling observer at any given event. Outside the black hole, energy density and flux lead to the standard results expected from the Hawking radiation emanating from the black hole, as the collapse proceeds. Inside the collapsing dust ball, the energy densities of both matter and scalar field diverge near the singularity in both (1+1) and (1+3)…
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