Wave-optical treatment of the shadow cast by a large sphere
arXiv:1801.06253 · doi:10.1103/PhysRevA.97.033810
Abstract
We study the electromagnetic (EM) field in the shadow cast by a large opaque sphere. For this, we consider the scattering of a high frequency monochromatic EM wave by the large sphere and develop a Mie theory that accounts for the presence of this obscuration. Applying fully absorbing boundary conditions, we find a solution for the Debye potentials, which we use to determine the EM field in the shadow in the wave zone at large distances from the sphere. We use the standard tools available from the nuclear scattering theory to develop the wave-optical treatment of the problem. Based on this treatment, we demonstrate that there is no EM field deep in the shadow, except for the field that is diffracted into the shadow by the edges of the sphere, as anticipated.
11 pages, 1 figure
References in corpus (2)
Cited by in corpus (12)
- Diffraction of light by the gravitational field of the Sun and the solar corona
- Image formation process with the solar gravitational lens
- Imaging extended sources with the solar gravitational lens
- Diffraction of electromagnetic waves by an extended gravitational lens
- Image recovery with the solar gravitational lens
- Wave-optical treatment of the shadow cast by a large gravitating sphere
- Diffraction of light by plasma in the solar system
- Optical properties of the solar gravitational lens in the presence of the solar corona
- Spectrally resolved imaging with the solar gravitational lens
- Gravitational lensing for interstellar power transmission
- Imaging rotating and orbiting exoplanets with the solar gravitational lens
- Gaussian beams and caustic avoidance in gravitational optics