Entanglement, Soft Modes, and Celestial CFT

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Chen, Hong Zhe, Myers, Robert, Raclariu, Ana-Maria
Format: Preprint
Published: 2024
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866909144510889984
author Chen, Hong Zhe
Myers, Robert
Raclariu, Ana-Maria
author_facet Chen, Hong Zhe
Myers, Robert
Raclariu, Ana-Maria
contents We revisit the calculation of vacuum entanglement entropy in free Maxwell theory in four-dimensional Minkowski spacetime. Weyl invariance allows for this theory to be embedded as a patch inside the Einstein static universe. We use conformal inversions to extend the conformal primary solutions of the equations of motion labelled by a boost-weight $Δ= 1 + iλ$ to an inverted Minkowski patch centered at spacelike infinity of the original patch. For $λ\neq 0$ these solutions admit an expansion in terms of wavefunctions supported in the (future) Milne wedges of the original and inverted Minkowski patches, that diagonalize the respective Milne times. The Minkowski vacuum can then be described as a thermofield double state on these two Milne wedges. We characterize the soft sectors of $λ= 0$ modes supported in the two Milne wedges. Upon reinterpreting the non-pure gauge $λ= 0$ wavefunctions as sourced by image charges in the inverse Minkowski patch, we construct an appropriate entangling constraint in the Minkowski theory, thereby characterizing the physical state space. We show that the edge mode contribution to the vacuum entanglement entropy is due to correlations between the soft charges of the two Milne patches, or equivalently non-trivial conformally soft mode configurations at the entangling surface.
format Preprint
id arxiv_https___arxiv_org_abs_2403_13913
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Entanglement, Soft Modes, and Celestial CFT
Chen, Hong Zhe
Myers, Robert
Raclariu, Ana-Maria
High Energy Physics - Theory
We revisit the calculation of vacuum entanglement entropy in free Maxwell theory in four-dimensional Minkowski spacetime. Weyl invariance allows for this theory to be embedded as a patch inside the Einstein static universe. We use conformal inversions to extend the conformal primary solutions of the equations of motion labelled by a boost-weight $Δ= 1 + iλ$ to an inverted Minkowski patch centered at spacelike infinity of the original patch. For $λ\neq 0$ these solutions admit an expansion in terms of wavefunctions supported in the (future) Milne wedges of the original and inverted Minkowski patches, that diagonalize the respective Milne times. The Minkowski vacuum can then be described as a thermofield double state on these two Milne wedges. We characterize the soft sectors of $λ= 0$ modes supported in the two Milne wedges. Upon reinterpreting the non-pure gauge $λ= 0$ wavefunctions as sourced by image charges in the inverse Minkowski patch, we construct an appropriate entangling constraint in the Minkowski theory, thereby characterizing the physical state space. We show that the edge mode contribution to the vacuum entanglement entropy is due to correlations between the soft charges of the two Milne patches, or equivalently non-trivial conformally soft mode configurations at the entangling surface.
title Entanglement, Soft Modes, and Celestial CFT
topic High Energy Physics - Theory
url https://arxiv.org/abs/2403.13913