Quick Navigation
Topics
Entanglement Theory Quantum Correlations
Quantum Foundations
Entangled de Sitter from Stringy Axionic Bell pair I: An analysis using Bunch Davies vacuum
arXiv
Authors: Sayantan Choudhury, Sudhakar Panda
Year
2017
Paper ID
44155
Status
Preprint
Abstract Read
~2 min
Abstract Words
194
Citations
N/A
Abstract
In this work, we study the quantum entanglement and compute entanglement entropy in de Sitter space for a bipartite quantum field theory driven by axion originating from {bf Type IIB} string compactification on a Calabi Yau three fold ${bf CY3}$ and in presence of {bf NS5} brane. For this compuation, we consider a spherical surface {bf S}2, which divide the spatial slice of de Sitter ${bf dS4}$ into exterior and interior sub regions. We also consider the initial choice of vaccum to be Bunch Davies state. First we derive the solution of the wave function of axion in a hyperbolic open chart by constructing a suitable basis for Bunch Davies vacuum state using Bogoliubov transformation. We then, derive the expression for density matrix by tracing over the exterior region. This allows us to compute entanglement entropy and Racute{e}nyi entropy in 3+1 dimension. Further we quantify the UV finite contribution of entanglement entropy which contain the physics of long range quantum correlations of our expanding universe. Finally, our analysis compliments the necessary condition for the violation of Bell's inequality in primordial cosmology due to the non vanishing entanglement entropy for axionic Bell pair.
Paper Tools
Become a member to use research tools
Sign in to open papers, visit source links, share, cite, compare, copy DOI links, request category corrections, and build your reading list.
Show Paper arXiv Publisher Share
Cite This Paper
Copy URL
Compare
Copy DOI Add to Reading List
Category Correction Request
Category Correction Request
Help us improve classification quality by proposing a better category. Every request is reviewed by an admin.
Sign in to submit a category correction request for this paper.
Log In to SubmitReferences & Citation Signals
Community Reactions
Quick sentiment from readers on this paper.
Score:
0
Likes: 0
Dislikes: 0
Sign in to react to this paper.
Discussion & Reviews (Moderated)
Average Rating: 0.0 / 5 (0 ratings)
No written reviews yet.