Computation of Casimir Interactions between Arbitrary 3D Objects with Arbitrary Material Properties
arXiv:1010.5539 · doi:10.1103/PhysRevA.84.010503
Abstract
We extend a recently introduced method for computing Casimir forces between arbitrarily--shaped metallic objects [M. T. H. Reid et al., Phys. Rev. Lett._103_ 040401 (2009)] to allow treatment of objects with arbitrary material properties, including imperfect conductors, dielectrics, and magnetic materials. Our original method considered electric currents on the surfaces of the interacting objects; the extended method considers both electric and magnetic surface current distributions, and obtains the Casimir energy of a configuration of objects in terms of the interactions of these effective surface currents. Using this new technique, we present the first predictions of Casimir interactions in several experimentally relevant geometries that would be difficult to treat with any existing method. In particular, we investigate Casimir interactions between dielectric nanodisks embedded in a dielectric fluid; we identify the threshold surface--surface separation at which finite--size effects become relevant, and we map the rotational energy landscape of bound nanoparticle diclusters.
References in corpus (6)
- Casimir forces between arbitrary compact objects
- Scattering Theory Approach to Electrodynamic Casimir Forces
- Virtual photons in imaginary time: Computing exact Casimir forces via standard numerical-electromagnetism techniques
- Non-touching nanoparticle diclusters bound by repulsive and attractive Casimir forces
- Exact results for Casimir interactions between dielectric bodies: The weak-coupling or van der Waals Limit
- Efficient Evaluation of Casimir Force in Arbitrary Three-dimensional Geometries by Integral Equation Methods
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