X-ray Novae and the Evidence for Black Hole Event Horizons
Abstract
We discuss new observations of X-ray novae which provide strong evidence that black holes have event horizons. Optical observations of 13 X-ray novae indicate that these binary stars contain collapsed objects too heavy to be stable neutron stars. The objects have been identified as black hole candidates. X-ray observations of several of these X-ray novae in quiescence with the Chandra X-ray Observatory show that the systems are approximately 100 times fainter than nearly identical X-ray novae containing neutron stars. The advection-dominated accretion flow model provides a natural explanation for the difference. In this model, the accreting gas reaches the accretor at the center with a large amount of thermal energy. If the accretor is a black hole, the thermal energy will disappear through the event horizon, and the object will be very dim. If the accretor is a neutron star or any other object with a surface, the energy will be radiated from the surface, and the object will be bright. We discuss alternate interpretations of the data that eliminate the need for advection-dominated accretion. Most of these alternatives still require an event horizon to explain the unusually low X-ray luminosities of the black hole candidates. Some of the alternatives are also inconsistent with observations.
Keywords
Cite
@article{arxiv.astro-ph/0107387,
title = {X-ray Novae and the Evidence for Black Hole Event Horizons},
author = {Ramesh Narayan and Michael R. Garcia and Jeffrey E. McClintock},
journal= {arXiv preprint arXiv:astro-ph/0107387},
year = {2017}
}
Comments
Invited review, to appear in Proc. IX Marcel Grossmann Meeting, eds. V. Gurzadyan, R. Jantzen and R. Ruffini, Singapore: World Scientific; 21 pages, 2 postscript figures, uses mprocl.sty (included); Table 2, Figs. 1, 2, and Sec. 5 have been updated