Casimir-Polder energy level shifts of an out-of-equilibrium particle near a microsphere
arXiv:1107.2290 · doi:10.1103/PhysRevA.85.022503
Abstract
Rydberg atoms and beams of ultracold polar molecules have become highly useful experimental tools in recent years. There is therefore a need for accessible calculations of interaction potentials between such particles and nearby surfaces and structures, bearing in mind that the particles are far out of thermal equilibrium with their environment and that their interaction is predominantly non-retarded. Based on a new perturbative expansion with respect to the inverse speed of light and the inverse conductivity, we derive a simple, closed-form expression for the interaction potential (i.e., the particle energy level shifts) of a particle and a metallic sphere that is is accurate at better than 1% level for typical experimental set-ups at room temperature and above, and off by no more than a few percent at any temperature including zero. Our result illuminates the influence of retardation and imperfect conductivity and the interplay of these effects with geometry. The method developed for the present study may be applied to other, more complex geometries.
10 pages, 5 figures, accepted for Phys. Rev. A
References in corpus (11)
- Backward Pulling Force from a Forward Propagating Beam
- Casimir-Lifshitz force out of thermal equilibrium
- Reversible state transfer between superconducting qubits and atomic ensembles
- Thermal Casimir vs Casimir-Polder forces: Equilibrium and non-equilibrium forces
- Thermal corrections to the Casimir effect
- Spatially Resolved Excitation of Rydberg Atoms and Surface Effects on an Atom Chip
- The van der Waals energy of atomic systems near absorbing and dispersing bodies
- Thermal Casimir-Polder shifts in Rydberg atoms near metallic surfaces
- Temperature-invariant Casimir-Polder forces despite large thermal photon numbers
- Temperature-independent Casimir-Polder forces in arbitrary geometries
- Universal scaling laws for dispersion interactions
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