KEYWORDS: Holography, Multiplexing, Holograms, 3D image reconstruction, Angular momentum, Signal to noise ratio, Design and modelling, Spatial light modulators, Photonics, Phase distribution
Optical orbital angular momentum (OAM) multiplexed holography has been implemented as an effective method for information encryption and storage. Multiramp helicoconical-OAM multiplexed holography is proposed and experimentally implemented. The mode selectivity of the multiramp mixed screw-edge dislocations, constant parameter K, and normalized factor are investigated, respectively, which demonstrates that those parameters can be used as additional coding degrees of freedom for holographic multiplexing. The combination of the topological charge and the other three parameters can provide a four-dimensional multiplexed holography and can enhance information capacity.
The light field distribution of the vortex beam propagating through the cube-corner prism is studied, considering the existence of the dihedral angle error and the flatness error in the process of the cube-corner prism, based on vector form of reflection-refraction law. The reflection-refraction mode of the cube-corner prism is established, and the phase distributions of the emitted light field and the diffraction light field are given when the dihedral angle error and the flatness error are considered. As for the cube-corner prism with circular section, the diffraction distribution of the vortex beam on the dihedral angle error and the flatness error is calculated. Meanwhile, the effects of diffraction distribution are analyzed. Simulation results show that, the divergence of diffraction intensity distribution increases with dihedral angle error increases. Also, the output diffraction pattern of the cube-corner prism with the three equal dihedral angle processing errors has six symmetrically distributed symmetrical petal structures. The quality of the output diffraction mode is significantly reduced at the existence of flatness error.
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