Please use this identifier to cite or link to this item: http://hdl.handle.net/2289/7885
Title: Spacetime entanglement entropy of de sitter and black hole horizons
Authors: Mathur, Abhishek
Surya, Sumati
X, Nomaan
Keywords: spacetime entanglement entropy
de Sitter spacetime
black hole horizon
cosmological horizon
Issue Date: Jan-2022
Publisher: IOP Publishing Ltd.
Citation: Classical and Quantum Gravity, 2022, Vol. 39, p035004
Abstract: We calculate Sorkin's manifestly covariant entanglement entropy S for a massive and massless minimally coupled free Gaussian scalar field for the de Sitter horizon and Schwarzschild de Sitter horizons respectively in d>2. In de Sitter spacetime we restrict the Bunch-Davies vacuum in the conformal patch to the static patch to obtain a mixed state. The finiteness of the spatial L2 norm in the static patch implies that S is well defined for each mode. We find that S for this mixed state is independent of the effective mass of the scalar field, and matches that of Higuchi and Yamamoto, where, a spatial density matrix was used to calculate the horizon entanglement entropy. Using a cut-off in the angular modes we show that S∝Ac, where Ac is the area of the de Sitter cosmological horizon. Our analysis can be carried over to the black hole and cosmological horizon in Schwarzschild de Sitter spacetime, which also has finite spatial L2 norm in the static regions. Although the explicit form of the modes is not known in this case, we use appropriate boundary conditions for a massless minimally coupled scalar field to find the mode-wise Sb,c, where b,c denote the black hole and de Sitter cosmological horizons, respectively. As in the de Sitter calculation we see that Sb,c∝Ab,c after taking a cut-off in the angular modes.
Description: Restricted Access. An open-access version is available at arXiv.org (one of the alternative locations)
URI: http://hdl.handle.net/2289/7885
ISSN: 0264-9381
1361-6382 (Online)
Alternative Location: https://arxiv.org/abs/2109.05845
https://doi.org/10.1088/1361-6382/ac4197
https://ui.adsabs.harvard.edu/abs/2021arXiv210905845M/abstract
Copyright: 2022 IOP Publishing Ltd
Appears in Collections:Research Papers (TP)

Files in This Item:
File Description SizeFormat 
2022_Class._Quantum_Grav._Vol.39_p035004.pdf
  Restricted Access
Restricted Access778.82 kBAdobe PDFView/Open Request a copy


Items in RRI Digital Repository are protected by copyright, with all rights reserved, unless otherwise indicated.