Casimir-Polder repulsion near edges: wedge apex and a screen with an aperture
arXiv:1103.4386 · doi:10.1103/PhysRevA.83.062507
Abstract
Although repulsive effects have been predicted for quantum vacuum forces between bodies with nontrivial electromagnetic properties, such as between a perfect electric conductor and a perfect magnetic conductor, realistic repulsion seems difficult to achieve. Repulsion is possible if the medium between the bodies has a permittivity in value intermediate to those of the two bodies, but this may not be a useful configuration. Here, inspired by recent numerical work, we initiate analytic calculations of the Casimir-Polder interaction between an atom with anisotropic polarizability and a plate with an aperture. In particular, for a semi-infinite plate, and, more generally, for a wedge, the problem is exactly solvable, and for sufficiently large anisotropy, Casimir-Polder repulsion is indeed possible, in agreement with the previous numerical studies. In order to achieve repulsion, what is needed is a sufficiently sharp edge (not so very sharp, in fact) so that the directions of polarizability of the conductor and the atom are roughly normal to each other. The machinery for carrying out the calculation with a finite aperture is presented. As a motivation for the quantum calculation, we carry out the corresponding classical analysis for the force between a dipole and a metallic sheet with a circular aperture, when the dipole is on the symmetry axis and oriented in the same direction.
34 pages, 9 figures; minor revision includes more consistent notation, and comparison with nonretarded results
References in corpus (9)
- Casimir-Lifshitz Theory and Metamaterials
- Tunable Casimir repulsion with three dimensional topological insulators
- The Casimir force and the quantum theory of lossy optical cavities
- Casimir Interactions for Anisotropic Magnetodielectric Metamaterials
- Casimir repulsion and metamaterials
- Microstructure Effects for Casimir Forces in Chiral Metamaterials
- Comment on "Repulsive Casimir Force in Chiral Metamaterials"
- A diagrammatic expansion of the Casimir energy in multiple reflections: theory and applications
- Enhanced van der Waals interaction at interfaces
Cited by in corpus (29)
- A Materials Perspective on Casimir and van der Waals Interactions
- Classical and fluctuation-induced electromagnetic interactions in micronscale systems: designer bonding, antibonding, and Casimir forces
- Probing atom-surface interactions by diffraction of Bose-Einstein condensates
- Atom-surface physics: A review
- Impact of anisotropy on the interaction of an atom with a one-dimensional nano-grating
- Fundamental limits to attractive and repulsive Casimir--Polder forces
- Casimir-Polder repulsion: Polarizable atoms, cylinders, spheres, and ellipsoids
- Repulsive Casimir-Polder forces from cosmic strings
- Field theoretic description of partially reflective surfaces
- Repulsive long-range forces between anisotropic atoms and dielectrics
- Repulsive van der Waals interaction between a quantum particle and a conducting toroid
- Casimir-Polder interaction between an atom and a conducting wall in cosmic string spacetime
- Image method in the calculation of the van der Waals force between an atom and a conducting surface
- Electromagnetic fluctuation-induced interactions in randomly charged slabs
- Casimir Energy for concentric - spheres
- Geometrical dependence in Casimir-Polder repulsion
- Geometry-induced Casimir suspension of oblate bodies in fluids
- Finite size effects and non-additivity in the van der Waals interaction
- The energy level shifts and the decay rate of an atom in the presence of a conducting wedge
- Repulsive Casimir Effects
- Thermal diffractive corrections to Casimir energies
- Electromagnetic Casimir-Polder Interaction for a Conducting Cone
- Geometrical dependence in Casimir-Polder repulsion: Anisotropically polarizable atom and anisotropically polarizable annular dielectric
- Novel approaches to tailor and tune light-matter interactions at the nanoscale
- Nonresonant Casimir-Polder repulsion with a monolayer topological insulator
- Reversing the Critical Casimir force by shape deformation
- Controlling the atom-sphere interaction with an external electric field
- Casimir-Polder repulsion: Three-body effects
- Magnetostatic interaction energy between a point magnet and a ring magnet