ID: gr-qc/9903027

How the Change in Horizon Area Drives Black Hole Evaporation

March 8, 1999

View on ArXiv

Similar papers 3

A Secret Tunnel Through The Horizon

May 19, 2004

89% Match
Maulik K. Parikh
High Energy Physics - Theory
Astrophysics
General Relativity and Quant...

Hawking radiation is often intuitively visualized as particles that have tunneled across the horizon. Yet, at first sight, it is not apparent where the barrier is. Here I show that the barrier depends on the tunneling particle itself. The key is to implement energy conservation, so that the black hole contracts during the process of radiation. A direct consequence is that the radiation spectrum cannot be strictly thermal. The correction to the thermal spectrum is of precisely...

Find SimilarView on arXiv

The entropy of Hawking radiation

June 12, 2020

89% Match
Ahmed Almheiri, Thomas Hartman, Juan Maldacena, ... , Tajdini Amirhossein
High Energy Physics - Theory
General Relativity and Quant...

In this review, we describe recent progress on the black hole information problem that involves a new understanding of how to calculate the entropy of Hawking radiation. We show how the method for computing gravitational fine-grained entropy, developed over the past 15 years, can be extended to capture the entropy of Hawking radiation. This technique reveals large corrections needed for the entropy to be consistent with unitary black hole evaporation.

Find SimilarView on arXiv

Black hole evaporation rates without spacetime

February 11, 2011

89% Match
Samuel L. Braunstein, Manas K. Patra
Quantum Physics
General Relativity and Quant...
High Energy Physics - Theory

Verlinde recently suggested that gravity, inertia, and even spacetime may be emergent properties of an underlying thermodynamic theory. This vision was motivated in part by Jacobson's 1995 surprise result that the Einstein equations of gravity follow from the thermodynamic properties of event horizons. Taking a first tentative step in such a program, we derive the evaporation rate (or radiation spectrum) from black hole event horizons in a spacetime-free manner. Our result re...

Find SimilarView on arXiv

Black Hole Entropy and Planckian Discreteness

October 30, 2023

89% Match
Alejandro Perez
General Relativity and Quant...
High Energy Physics - Theory

A brief overview of the discovery that macroscopic black holes are thermodynamical systems is presented. They satisfy the laws of thermodynamics and are associated with a temperature and an entropy equal to one quarter of their horizon area in Planck units. They emit black body radiation and slowly evaporate as a consequence of Heisenberg's uncertainty principle. The problem of understanding the microscopic source of their large entropy, as well as the nature of their final f...

Find SimilarView on arXiv

Black Hole Evaporation and Nonequilibrium Thermodynamics for a Radiation Field

May 18, 2005

89% Match
Hiromi Saida
General Relativity and Quant...

When a black hole is put in an "empty" space (zero temperature space) on which there is no matter except the matter of the Hawking radiation (Hawking field), then an outgoing energy flow from the black hole into the empty space exists. By the way, an equilibrium between two arbitrary systems can not allow the existence of an energy (heat) flow from one system to another. Consequently, in the case of a black hole evaporation in the empty space, the Hawking field should be in a...

Find SimilarView on arXiv

Quantum Geometry and Black Holes

January 13, 2015

89% Match
J. Fernando Barbero G., Alejandro Perez
General Relativity and Quant...
High Energy Physics - Theory

We present an overall picture of the advances in the description of black hole physics from the perspective of loop quantum gravity. After an introduction that discusses the main conceptual issues we present some details about the classical and quantum geometry of isolated horizons and their quantum geometry and then use this scheme to give a natural definition of the entropy of black holes. The entropy computations can be neatly expressed in the form of combinatorial problem...

Find SimilarView on arXiv

Black hole radiation spectrum in LQG: Isolated Horizon framework

June 14, 2007

89% Match
Jacobo Diaz-Polo, Enrique Fernandez-Borja
General Relativity and Quant...

Recent detailed analysis within the Loop Quantum Gravity calculation of black hole entropy shows a stair-like structure in the behavior of entropy as a function of horizon area. The non-trivial distribution of the degeneracy of the black hole horizon area eigenstates is at the origin of this behavior. This degeneracy distribution is analyzed and a phenomenological model is put forward to study the implications of this distribution in the black hole radiation spectrum. Some qu...

Find SimilarView on arXiv

Quantum toy model for black-hole back-reaction

June 27, 2007

89% Match
Clovis Maia, Ralf Schützhold
General Relativity and Quant...

We propose a simple quantum field theoretical toy model for black hole evaporation and study the back-reaction of Hawking radiation onto the classical background. It turns out that the horizon is also ``pushed back'' in this situation (i.e., the interior region shrinks) but this back-reaction is not caused by energy conservation but by momentum balance. The effective heat capacity and the induced entropy variation can have both signs -- depending on the parameters of the mode...

Find SimilarView on arXiv

Black Hole evaporation: A Perspective from Loop Quantum Gravity

January 23, 2020

89% Match
Abhay Ashtekar
Cosmology and Nongalactic As...

A personal perspective on the black hole evaporation process is presented using as guidelines inputs from: (i) loop quantum gravity, (ii) simplified models where concrete results have been obtained, and, (iii) semi-classical quantum general relativity. On the one hand, the final picture is conservative in that there are concrete results that support each stage of the argument, and there are no large departures from general relativity or semi-classical gravity in tame regions ...

Find SimilarView on arXiv

Black Hole Entropy is Thermodynamic Entropy

March 14, 2019

89% Match
Carina E. A. Prunkl, Christopher G. Timpson
History and Philosophy of Ph...

The comparison of geometrical properties of black holes with classical thermodynamic variables reveals surprising parallels between the laws of black hole mechanics and the laws of thermodynamics. Since Hawking's discovery that black holes when coupled to quantum matter fields emit radiation at a temperature proportional to their surface gravity, the idea that black holes are genuine thermodynamic objects with a well-defined thermodynamic entropy has become more and more popu...

Find SimilarView on arXiv