Planck star tunneling time: An astrophysically relevant observable from background-free quantum gravity

A gravitationally collapsed object can bounce out from its horizon via a tunnelling process that violates the classical equations in a finite region. Since tunnelling is a nonperturbative phenomenon, it cannot be described in terms of quantum fluctuations around a classical solution, and a backgroun...

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Veröffentlicht in:Physical review. D 2016-10, Vol.94 (8), Article 084035
Hauptverfasser: Christodoulou, Marios, Rovelli, Carlo, Speziale, Simone, Vilensky, Ilya
Format: Artikel
Sprache:eng
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Zusammenfassung:A gravitationally collapsed object can bounce out from its horizon via a tunnelling process that violates the classical equations in a finite region. Since tunnelling is a nonperturbative phenomenon, it cannot be described in terms of quantum fluctuations around a classical solution, and a background-free formulation of quantum gravity is needed to analyze it. Here, we use loop quantum gravity to compute the amplitude for this process, in a first approximation. The amplitude determines the tunnelling time as a function of the mass. This is the key information to evaluate the relevance of this process for the interpretation of fast radio bursts or high-energy cosmic rays. The calculation offers a template and a concrete example of how a background-free quantum theory of gravity can be used to compute a realistic observable quantity.
ISSN:2470-0010
2470-0029
DOI:10.1103/PhysRevD.94.084035