Entanglement harvesting in the presence of a reflecting boundary
From MaRDI portal
Publication:1980596
DOI10.1007/JHEP08(2021)020zbMath1469.81007arXiv2101.00114OpenAlexW3193066039MaRDI QIDQ1980596
Zhi-Hong Liu, Jia-Lin Zhang, Hong Wei Yu
Publication date: 8 September 2021
Published in: Journal of High Energy Physics (Search for Journal in Brave)
Full work available at URL: https://arxiv.org/abs/2101.00114
Model quantum field theories (81T10) Bosonic systems in quantum theory (81V73) Entanglement measures, concurrencies, separability criteria (81P42)
Related Items
Entanglement harvesting of three Unruh-DeWitt detectors ⋮ Unruh quantum Otto engine in the presence of a reflecting boundary ⋮ Harvesting correlations from vacuum quantum fields in the presence of a reflecting boundary ⋮ Can anti-Unruh effect survive the environment-induced interatomic interaction? ⋮ Harvesting entanglement by non-identical detectors with different energy gaps
Cites Work
- Unnamed Item
- Entanglement structure in expanding universes
- Geometric phase of an accelerated two-level atom in the presence of a perfectly reflecting plane boundary
- Entanglement harvesting with moving mirrors
- Entangling detectors in anti-De Sitter space
- Effects of horizons on entanglement harvesting
- Entanglement in curved spacetimes and cosmology
- Entanglement in many-body systems
- Quantum source of entropy for black holes
- Violating Bell’s inequalities in vacuum
- Holographic Derivation of Entanglement Entropy from the anti–de Sitter Space/Conformal Field Theory Correspondence
- Acceleration-assisted entanglement harvesting and rangefinding
- Quantum cryptography based on Bell’s theorem
- Communication via one- and two-particle operators on Einstein-Podolsky-Rosen states
- Entropy and area
- Teleporting an unknown quantum state via dual classical and Einstein-Podolsky-Rosen channels
- Cosmological quantum entanglement
- Relativistic quantum information in detectors–field interactions
- Harvesting entanglement from the black hole vacuum
- Entanglement of Formation of an Arbitrary State of Two Qubits
- Precise space–time positioning for entanglement harvesting
- Quantum Fields in Curved Space