Synthetic helical dichroism for six-dimensional optical orbital angular momentum multiplexing

Author(s):

Ouyang, Xu; Xu, Yi; Xian, Mincong; Feng, Ziwei; Zhu, Linwei; Cao, Yaoyu; Lan, Sheng; Guan, Bai-Ou; Qiu, Cheng-Wei; Gu, Min & Li, Xiangping

Abstract:

“Optical multiplexing by creating orthogonal data channels has offered an unparalleled approach for information encoding with substantially improved density and security. Despite the fact that the orbital angular momentum (OAM) of light involves physical orthogonal division, the lack of explicit OAM sensitivity at the nanoscale prevents this feature from realizing nanophotonic information encoding. Here we demonstrate the viability of nanoscale information multiplexing utilizing the OAM of light. This is achieved by discovering OAM-dependent polarization ellipses in non-paraxial focusing conditions and hence synthetic helical dichroism resulting from the distinct absorption of achiral nanoparticles to the different order of OAM beams. Leveraging this mechanism, the application of subwavelength-scale focused OAM beams to self-assemble plasmonic nanoaggregates further enables six-dimensional optical information multiplexing, in conjunction with wavelength, polarization and three spatial dimensions. Our results suggest the possibility of multiplexing OAM division as an unbounded degree of freedom for nanophotonic information encoding, security imprinting and beyond.”

Link to Publications Page

Publication: Nature Photonics
Issue/Year: Nature Photonics, 2021
DOI: 10.1038/s41566-021-00880-1

Acceleration of polygon-based computer-generated holograms using look-up tables and reduction of the table size via principal component analysis

Author(s):

Wang, Fan; Shimobaba, Tomoyoshi; Zhang, Yaping; Kakue, Takashi & Ito, Tomoyoshi

Abstract:

“In this study, we first analyze the fully analytical frequency spectrum solving method based on three-dimensional affine transform. Thus, we establish a new method for combining look-up tables (LUTs) with polygon holography. The proposed method was implemented and proved to be accelerated about twice compared to the existing methods. In addition, principal component analysis was used to compress the LUTs, effectively reducing the required memory without artifacts. Finally, we calculated very complex objects on a graphics processing unit using the proposed method, and the calculation speed was higher than that of existing polygon-based methods.”

Link to Publications Page

Publication: Optics Express
Issue/Year: Optics Express, Volume 29; Number 22; Pages 35442; 2021
DOI: 10.1364/oe.435966