Spacetime from Unentanglement
arXiv:1711.05263 · doi:10.1103/PhysRevD.97.106010
Abstract
The past decade has seen a tremendous effort toward unraveling the relationship between entanglement and emergent spacetime. These investigations have revealed that entanglement between holographic degrees of freedom is crucial for the existence of bulk spacetime. We examine this connection from the other end of the entanglement spectrum and clarify the assertion that maximally entangled states have no reconstructable spacetime. To do so, we first define the conditions for bulk reconstructability. Under these terms, we scrutinize two cases of maximally entangled holographic states. One is the familiar example of AdS black holes; these are dual to thermal states of the boundary CFT. Sending the temperature to the cutoff scale makes the state maximally entangled and the respective black hole consumes the spacetime. We then examine the de Sitter limit of FRW spacetimes. This limit is maximally entangled if one formulates the boundary theory on the holographic screen. Paralleling the AdS black hole, we find the resulting reconstructable region of spacetime vanishes. Motivated by these results, we prove a theorem showing that maximally entangled states have no reconstructable spacetime. Evidently, the emergence of spacetime is endemic to intermediate entanglement. By studying the manner in which intermediate entanglement is achieved, we uncover important properties about the boundary theory of FRW spacetimes. With this clarified understanding, our final discussion elucidates the natural way in which holographic Hilbert spaces may house states dual to different geometries. This paper provides a coherent picture clarifying the link between spacetime and entanglement and develops many promising avenues of further work.
51 pages, 14 figures; v2: minor changes, references added; v3: matches published version
References in corpus (5)
- Many body localization and thermalization in quantum statistical mechanics
- Surface/State Correspondence as a Generalized Holography
- Quantum Entanglement of the Sachdev-Ye-Kitaev Models
- Eigenstate entanglement in the Sachdev-Ye-Kitaev model
- Butterfly Velocities for Holographic Theories of General Spacetimes
Cited by in corpus (31)
- An Information Paradox and Its Resolution in de Sitter Holography
- Holographic Renyi Entropy from Quantum Error Correction
- De Sitter Holography and Entanglement Entropy
- Quasi-local energy and microcanonical entropy in two-dimensional nearly de Sitter gravity
- Pure de Sitter space and the island moving back in time
- The central dogma and cosmological horizons
- Entanglement in De Sitter Space
- Comments on Holographic Entanglement Entropy in TT Deformed CFTs
- Pulling the Boundary into the Bulk
- Holographic Complexity in dS
- On the Holographic Dual of a Topological Symmetry Operator
- Spacetime and Universal Soft Modes --- Black Holes and Beyond
- Ensemble from Coarse Graining: Reconstructing the Interior of an Evaporating Black Hole
- Complex geodesics in de Sitter space
- On Quantum Gravity If Non-Locality Is Fundamental
- Reanalyzing an Evaporating Black Hole
- Coarse-Graining Holographic States: A Semiclassical Flow in General Spacetimes
- Towards non-AdS Holography via the Long String Phenomenon
- Area Law Unification and the Holographic Event Horizon
- Logarithmic Corrections, Entanglement Entropy, and UV Cutoffs in de Sitter Spacetime
- Volume complexity of dS bubbles
- Black Hole and de Sitter Microstructures from a Semiclassical Perspective
- Outer Entropy and Quasilocal Energy
- Emergent Gravity in a Holographic Universe
- Holographic Complexity in FRW Spacetimes
- The Cosmological Switchback Effect II
- Holographic Complexity for disentangled states
- Vertex operators for an expanding universe
- Outer entropy = Bartnik-Bray inner mass, and the gravitational ant conjecture
- Holography and the Page curve of an evaporating black hole
- Holography for de Sitter bubble geometries