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Quantum Thermodynamics
Counting atypical black hole microstates from entanglement wedges
arXiv
Authors: Zixia Wei, Yasushi Yoneta
Year
2022
Paper ID
6627
Status
Preprint
Abstract Read
~2 min
Abstract Words
162
Citations
N/A
Abstract
Disentangled black hole microstates are atypical states in holographic CFTs whose gravity duals do not have smooth horizons. If there exist sufficiently many disentangled microstates to account for the entire black hole entropy, then any black hole microstate can be written as a superposition of states without smooth horizons. We show that there exist sufficiently many disentangled microstates to account for almost the entire black hole entropy of a large AdS black hole at the semiclassical limit GN→ 0. In addition, we also argue that in generic quantum many-body systems with short-ranged interactions, there exist sufficiently many area law states in the microcanonical subspace to account for almost the entire thermodynamic entropy in the standard thermodynamic limit. Area law states are atypical since a typical state should contain volume law entanglement. Furthermore, we also present an explicit way to construct such a set of area law states, and argue that the same construction may also be used to construct disentangled states.
Why This Paper Matters
- This paper contributes to the Quantum Thermodynamics research area in the Quantum Articles archive.
- It adds a 2022 reference point for readers tracking recent quantum research.
- Disentangled black hole microstates are atypical states in holographic CFTs whose gravity duals do not have smooth horizons.
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