Identifying graphene layers via spin Hall effect of light
arXiv:1208.1168 · doi:10.1063/1.4772502
Abstract
The spin Hall effect (SHE) of light is a useful metrological tool for characterizing the structure parameters variations of nanostructure. In this letter we propose using the SHE of light to identify the graphene layers. This technique is based on the mechanism that the transverse displacements in SHE of light are sensitive to the variations of graphene layer numbers.
4 pages, 4 figures
References in corpus (6)
- Making graphene visible
- Conservation of Angular Momentum, Transverse Shift, and Spin Hall Effect in Reflection and Refraction of Electromagnetic Wave Packet
- Geometrodynamics of Spinning Light
- Observation of the spin-based plasmonic effect in nanoscale structures
- Role of beam propagation in Goos-Hänchen and Imbert-Fedorov shifts
- Weak measurements of a large spin angular splitting of light beam on reflection at Brewster angle
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