Casimir-Polder potentials as entanglement probe
arXiv:quant-ph/0407032 · doi:10.1209/0295-5075/78/30003
Abstract
We have considered the interaction of a pair of spatially separated two-level atoms with the electromagnetic field in its vacuum state and we have analyzed the amount of entanglement induced between the two atoms by the non local field fluctuations. This has allowed us to characterize the quantum nature of the non local correlations of the electromagnetic field vacuum state as well as to link the induced quantum entanglement with Casimir-Polder potentials.
Published on Europhysics Letters 78 (2007) 30003
References in corpus (6)
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- How the mass of a scalar field influences Resonance Casimir-Polder interaction in Schwarzschild spacetime
- Entangled Probability Distributions for Center-of-Mass Tomography
- Time-dependent resonance interaction energy between two entangled atoms under non-equilibrium conditions