We show how careful control of the incident polarization of a light beam close to the Brewster angle gives a giant transverse spatial shift on reflection. This resolves the long-standing puzzle of why such beam shifts transverse to the incident plane (Imbert-Fedorov shifts) tend to be an order of magnitude smaller than the related Goos-Hänchen shifts in the longitudinal direction, which are largest close to critical incidence. We demonstrate that with the proper initial polarization the transverse displacements can be equally large, which we confirm experimentally near Brewster incidence. In contrast to the established understanding, these polarizations are elliptical and angle dependent. We explain the magnitude of the Imbert-Fedorov shift...
It is well known that reflection of a Gaussian light beam (TEM(00)) by a planar dielectric interface...
We study the classical optics effects known as Goos–Hänchen and Imbert–Fedorov shifts, occurring whe...
Here I argue that Liu and Li [B.-Y. Liu, C.-F. Li, Opt. Commun. 281 (2008) 3427] reproduce calculati...
We show how careful control of the incident polarization of a light beam close to the Brewster angle...
We consider reflection and transmission of polarized paraxial light beams at a plane dielectric inte...
We consider reflection and transmission of polarized paraxial light beams at a plane dielectric inte...
We study the classical optics effects known as Goos-Hanchen and Imbert-Fedorov shifts, occurring whe...
When a beam of light is reflected by a smooth surface its behavior deviates from geometrical optics ...
The magnitudes of beam shifts (Goos-Hänchen and Imbert-Fedorov, spatial and angular) are greatly en...
We present a solution to the problem of reflection and transmission of a polarized paraxial light be...
After a total internal reflection on a dielectric interface, a light beam elliptically polarized und...
Following Hans Wolter's treatment of the spatial Goos–Hänchen shift of a totally internally reflecte...
Abstract. We describe how the notion of optical beam shifts (including the spatial and angular Goos-...
A new theory has been advanced, through expressing the vector angular spectrum of the electric field...
Context. To directly image rocky exoplanets in reflected (polarized) light, future space- and ground...
It is well known that reflection of a Gaussian light beam (TEM(00)) by a planar dielectric interface...
We study the classical optics effects known as Goos–Hänchen and Imbert–Fedorov shifts, occurring whe...
Here I argue that Liu and Li [B.-Y. Liu, C.-F. Li, Opt. Commun. 281 (2008) 3427] reproduce calculati...
We show how careful control of the incident polarization of a light beam close to the Brewster angle...
We consider reflection and transmission of polarized paraxial light beams at a plane dielectric inte...
We consider reflection and transmission of polarized paraxial light beams at a plane dielectric inte...
We study the classical optics effects known as Goos-Hanchen and Imbert-Fedorov shifts, occurring whe...
When a beam of light is reflected by a smooth surface its behavior deviates from geometrical optics ...
The magnitudes of beam shifts (Goos-Hänchen and Imbert-Fedorov, spatial and angular) are greatly en...
We present a solution to the problem of reflection and transmission of a polarized paraxial light be...
After a total internal reflection on a dielectric interface, a light beam elliptically polarized und...
Following Hans Wolter's treatment of the spatial Goos–Hänchen shift of a totally internally reflecte...
Abstract. We describe how the notion of optical beam shifts (including the spatial and angular Goos-...
A new theory has been advanced, through expressing the vector angular spectrum of the electric field...
Context. To directly image rocky exoplanets in reflected (polarized) light, future space- and ground...
It is well known that reflection of a Gaussian light beam (TEM(00)) by a planar dielectric interface...
We study the classical optics effects known as Goos–Hänchen and Imbert–Fedorov shifts, occurring whe...
Here I argue that Liu and Li [B.-Y. Liu, C.-F. Li, Opt. Commun. 281 (2008) 3427] reproduce calculati...