Casimir-Polder effect with thermally excited surfaces
arXiv:1504.06422 · doi:10.1103/PhysRevA.91.052506
Abstract
We take a closer look at the fundamental Casimir-Polder interaction between quantum particles and dispersive dielectric surfaces with surface polariton or plasmon resonances. Linear response theory shows that in the near field, van der Waals, regime the free energy shift of a particle contains a thermal component that depends exclusively on the population/excitation of the evanescent surface polariton/plasmon modes. Our work makes evident the link between particle surface interaction and near field thermal emission and demonstrates how this can be used to engineer Casimir-Polder forces. We also examine how the exotic effects of surface waves are washed out as the distance from the surface increases. In the case of molecules or excited state atoms, far field approximations result in a classical dipole-dipole interaction which depends on the surface reflectivity and the mean number of photons at the frequency of the atomic/molecular transition. Finally we present numerical results for the CP interaction between Cs atoms and various dielectric surfaces with a single polariton resonance and discuss the implications of temperature and retardation effects for specific spectroscopic experiments.
accepted in Phys. Rev. A
References in corpus (11)
- Measurement of the Temperature Dependence of the Casimir-Polder Force
- New asymptotic behaviour of the surface-atom force out of thermal equilibrium
- Cold Atom Physics Using Ultra-Thin Optical Fibers: Light-Induced Dipole Forces and Surface Interactions
- Casimir-Polder forces in the presence of thermally excited surface modes
- Optical response of gas-phase atoms at less than from a dielectric surface
- Temperature-invariant Casimir-Polder forces despite large thermal photon numbers
- Impact of graphene coating on the atom-plate interaction
- Temperature dependence of the dielectric permittivity of CaF2, BaF2 and Al2O3: application to the prediction of a temperature dependent van der Waals surface interaction exerted onto a neighbouring Cs (8P{3/2}) atom
- Selective Reflection Spectroscopy at the Interface between a Calcium Fluoride Window and Cs Vapour
- Anisotropic Atom-Surface Interactions in the Casimir-Polder Regime
- Comment on "Optical Response of Gas-Phase Atoms at Less than lambda/80 from a Dielectric Surface" published by K. A. Whittaker et al.