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arXiv · 0803.3627

Cosmological Physics with Black Holes (and Possibly White Dwarfs)

Abstract

The notion that microparsec-scale black holes can be used to probe gigaparsec-scale physics may seem counterintuitive, at first. Yet, the gravitational observatory LISA will detect cosmologically-distant coalescing pairs of massive black holes, accurately measure their luminosity distance and help identify an electromagnetic counterpart or a host galaxy. A wide variety of new black hole studies and a gravitational version of Hubble's diagram become possible if host galaxies are successfully identified. Furthermore, if dark energy is a manifestation of large-scale modified gravity, deviations from general relativistic expectations could become apparent in a gravitational signal propagated over cosmological scales, especially when compared to the electromagnetic signal from a same source. Finally, since inspirals of white dwarfs into massive black holes at cosmological distances may permit pre-merger localizations, we suggest that careful monitoring of these events and any associated electromagnetic counterpart could lead to high-precision cosmological measurements with LISA.

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BibTeXRIS

Kristen Menou, Zoltan Haiman, Bence Kocsis. 2008-03-25. Cosmological Physics with Black Holes (and Possibly White Dwarfs). https://doi.org/10.1016/j.newar.2008.03.020

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