Black Hole's Quantum N-Portrait
Abstract
We establish a quantum measure of classicality in the form of the occupation number, , of gravitons in a gravitational field. This allows us to view classical background geometries as quantum Bose-condensates with large occupation numbers of soft gravitons. We show that among all possible sources of a given physical length, is maximized by the black hole and coincides with its entropy. The emerging quantum mechanical picture of a black hole is surprisingly simple and fully parameterized by . The black hole is a leaky bound-state in form of a cold Bose-condensate of weakly-interacting soft gravitons of wave-length times the Planck length and of quantum interaction strength 1/N. Such a bound-state exists for an arbitrary . This picture provides a simple quantum description of the phenomena of Hawking radiation, Bekenstein entropy as well as of non-Wilsonian UV-self-completion of Einstein gravity. We show that Hawking radiation is nothing but a quantum depletion of the graviton Bose-condensate, which despite the zero temperature of the condensate produces a thermal spectrum of temperature . The Bekenstein entropy originates from the exponentially growing with number of quantum states. Finally, our quantum picture allows to understand classicalization of deep-UV gravitational scattering as transition. We point out some fundamental similarities between the black holes and solitons, such as a t'Hooft-Polyakov monopole. Both objects represent Bose-condensates of soft bosons of wavelength and interaction strength 1/N. In short, the semi-classical black hole physics is 1/N-coupled large- quantum physics.
Cite
@article{arxiv.1112.3359,
title = {Black Hole's Quantum N-Portrait},
author = {Gia Dvali and Cesar Gomez},
journal= {arXiv preprint arXiv:1112.3359},
year = {2012}
}
Comments
37 pages, Latex