Dispersion interaction between two atoms in electromagnetic fields
arXiv:0806.2620 · doi:10.1088/1742-6596/161/1/012041
Abstract
We present a new theory of atom-atom dispersion interaction in the presence of electromagnetic fields. The theory takes into account the absorption and emission of virtual photons leading to the resonance contributions to the interaction potential in the case of non-equilibrium dynamics.
5 pages
References in corpus (8)
- Measurement of the Temperature Dependence of the Casimir-Polder Force
- New asymptotic behaviour of the surface-atom force out of thermal equilibrium
- Casimir-Lifshitz force out of thermal equilibrium
- Thermal Casimir vs Casimir-Polder forces: Equilibrium and non-equilibrium forces
- Present status of controversies regarding the thermal Casimir force
- Van der Waals interaction of excited media
- Casimir-Polder interaction between an excited atom and a gas dielectric medium
- Selective Reflection Spectroscopy on the UV Third Resonance Line of Cs : Simultaneous Probing of a van der Waals Atom-Surface Interaction Sensitive to Far IR Couplings and of Interatomic Collisions
Cited by in corpus (6)
- Dispersion Interaction between Two Hydrogen Atoms in a Static Electric Field
- Quantum corrections to the classical electrostatic interaction between induced dipoles
- Lateral interatomic dispersion forces
- Nonadditive quantum gravitational interaction for three nonpointlike objects
- Time-dependent resonance interaction energy between two entangled atoms under non-equilibrium conditions
- Resonance oscillations of non-reciprocal long-range van der Waals forces between atoms in electromagnetic fields