Geometric spin Hall effect of light in tightly focused polarization tailored light beams
arXiv:1308.2579 · doi:10.1103/PhysRevA.89.013840
Abstract
Recently, it was shown that a non-zero transverse angular momentum manifests itself in a polarization dependent intensity shift of the barycenter of a paraxial light beam [A. Aiello et al., Phys. Rev. Lett. 103, 100401 (2009)]. The underlying effect is phenomenologically similar to the spin Hall effect of light, but does not depend on the specific light-matter interaction and can be interpreted as a purely geometric effect. Thus, it was named the geometric spin Hall effect of light. Here, we experimentally investigate the appearance of this effect in tightly focused vector-beams. We use an experimental nano-probing technique in combination with a reconstruction algorithm to verify the relative shifts of the components of the electric energy density in the focal plane, which are linked to the intensity shift. By that, we experimentally demonstrate the geometric spin Hall effect of light in a focused light beam.
8 pages, 5 figures
References in corpus (6)
- Conservation of Angular Momentum, Transverse Shift, and Spin Hall Effect in Reflection and Refraction of Electromagnetic Wave Packet
- Identifying graphene layers via spin Hall effect of light
- Role of beam propagation in Goos-Hänchen and Imbert-Fedorov shifts
- Nanointerferometric Amplitude and Phase Reconstruction of Tightly Focused Vector Beams
- The photonic wheel: demonstration of a state of light with purely transverse angular momentum
- Variation of polarization distribution of reflected beam caused by spin separation
Cited by in corpus (8)
- Measuring the Transverse Spin Density of Light
- Tunable two-photon quantum interference of structured light
- Plasmonic lateral forces on chiral spheres
- Anomalous Geometric Spin Hall Effect of Light?
- Hidden singularities in 3D optical fields
- Spin selective scattering modes in random anisotropy optical medium
- Observation of Larmor-like precession of a single birefringent particle due to spin-dependent forces in tilted optical tweezers
- Influence of light propagation on its polarization in free space